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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 #include "src/api.h"
6 
7 #include <string.h>  // For memcpy, strlen.
8 #ifdef V8_USE_ADDRESS_SANITIZER
9 #include <sanitizer/asan_interface.h>
10 #endif  // V8_USE_ADDRESS_SANITIZER
11 #include <cmath>  // For isnan.
12 #include "include/v8-debug.h"
13 #include "include/v8-profiler.h"
14 #include "include/v8-testing.h"
15 #include "src/assert-scope.h"
16 #include "src/bootstrapper.h"
17 #include "src/code-stubs.h"
18 #include "src/compiler.h"
19 #include "src/conversions-inl.h"
20 #include "src/counters.h"
21 #include "src/cpu-profiler.h"
22 #include "src/debug.h"
23 #include "src/deoptimizer.h"
24 #include "src/execution.h"
25 #include "src/global-handles.h"
26 #include "src/heap-profiler.h"
27 #include "src/heap-snapshot-generator-inl.h"
28 #include "src/icu_util.h"
29 #include "src/json-parser.h"
30 #include "src/messages.h"
31 #ifdef COMPRESS_STARTUP_DATA_BZ2
32 #include "src/natives.h"
33 #endif
34 #include "src/parser.h"
35 #include "src/platform.h"
36 #include "src/platform/time.h"
37 #include "src/profile-generator-inl.h"
38 #include "src/property-details.h"
39 #include "src/property.h"
40 #include "src/runtime.h"
41 #include "src/runtime-profiler.h"
42 #include "src/scanner-character-streams.h"
43 #include "src/simulator.h"
44 #include "src/snapshot.h"
45 #include "src/unicode-inl.h"
46 #include "src/utils/random-number-generator.h"
47 #include "src/v8threads.h"
48 #include "src/version.h"
49 #include "src/vm-state-inl.h"
50 
51 
52 #define LOG_API(isolate, expr) LOG(isolate, ApiEntryCall(expr))
53 
54 #define ENTER_V8(isolate)                                          \
55   ASSERT((isolate)->IsInitialized());                              \
56   i::VMState<i::OTHER> __state__((isolate))
57 
58 namespace v8 {
59 
60 #define ON_BAILOUT(isolate, location, code)                        \
61   if (IsExecutionTerminatingCheck(isolate)) {                      \
62     code;                                                          \
63     UNREACHABLE();                                                 \
64   }
65 
66 
67 #define EXCEPTION_PREAMBLE(isolate)                                         \
68   (isolate)->handle_scope_implementer()->IncrementCallDepth();              \
69   ASSERT(!(isolate)->external_caught_exception());                          \
70   bool has_pending_exception = false
71 
72 
73 #define EXCEPTION_BAILOUT_CHECK_GENERIC(isolate, value, do_callback)           \
74   do {                                                                         \
75     i::HandleScopeImplementer* handle_scope_implementer =                      \
76         (isolate)->handle_scope_implementer();                                 \
77     handle_scope_implementer->DecrementCallDepth();                            \
78     if (has_pending_exception) {                                               \
79       bool call_depth_is_zero = handle_scope_implementer->CallDepthIsZero();   \
80       (isolate)->OptionalRescheduleException(call_depth_is_zero);              \
81       do_callback                                                              \
82       return value;                                                            \
83     }                                                                          \
84     do_callback                                                                \
85   } while (false)
86 
87 
88 #define EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, value)                    \
89   EXCEPTION_BAILOUT_CHECK_GENERIC(                                             \
90       isolate, value, isolate->FireCallCompletedCallback();)
91 
92 
93 #define EXCEPTION_BAILOUT_CHECK(isolate, value)                                \
94   EXCEPTION_BAILOUT_CHECK_GENERIC(isolate, value, ;)
95 
96 
97 // --- E x c e p t i o n   B e h a v i o r ---
98 
99 
FatalProcessOutOfMemory(const char * location)100 void i::FatalProcessOutOfMemory(const char* location) {
101   i::V8::FatalProcessOutOfMemory(location, false);
102 }
103 
104 
105 // When V8 cannot allocated memory FatalProcessOutOfMemory is called.
106 // The default fatal error handler is called and execution is stopped.
FatalProcessOutOfMemory(const char * location,bool take_snapshot)107 void i::V8::FatalProcessOutOfMemory(const char* location, bool take_snapshot) {
108   i::HeapStats heap_stats;
109   int start_marker;
110   heap_stats.start_marker = &start_marker;
111   int new_space_size;
112   heap_stats.new_space_size = &new_space_size;
113   int new_space_capacity;
114   heap_stats.new_space_capacity = &new_space_capacity;
115   intptr_t old_pointer_space_size;
116   heap_stats.old_pointer_space_size = &old_pointer_space_size;
117   intptr_t old_pointer_space_capacity;
118   heap_stats.old_pointer_space_capacity = &old_pointer_space_capacity;
119   intptr_t old_data_space_size;
120   heap_stats.old_data_space_size = &old_data_space_size;
121   intptr_t old_data_space_capacity;
122   heap_stats.old_data_space_capacity = &old_data_space_capacity;
123   intptr_t code_space_size;
124   heap_stats.code_space_size = &code_space_size;
125   intptr_t code_space_capacity;
126   heap_stats.code_space_capacity = &code_space_capacity;
127   intptr_t map_space_size;
128   heap_stats.map_space_size = &map_space_size;
129   intptr_t map_space_capacity;
130   heap_stats.map_space_capacity = &map_space_capacity;
131   intptr_t cell_space_size;
132   heap_stats.cell_space_size = &cell_space_size;
133   intptr_t cell_space_capacity;
134   heap_stats.cell_space_capacity = &cell_space_capacity;
135   intptr_t property_cell_space_size;
136   heap_stats.property_cell_space_size = &property_cell_space_size;
137   intptr_t property_cell_space_capacity;
138   heap_stats.property_cell_space_capacity = &property_cell_space_capacity;
139   intptr_t lo_space_size;
140   heap_stats.lo_space_size = &lo_space_size;
141   int global_handle_count;
142   heap_stats.global_handle_count = &global_handle_count;
143   int weak_global_handle_count;
144   heap_stats.weak_global_handle_count = &weak_global_handle_count;
145   int pending_global_handle_count;
146   heap_stats.pending_global_handle_count = &pending_global_handle_count;
147   int near_death_global_handle_count;
148   heap_stats.near_death_global_handle_count = &near_death_global_handle_count;
149   int free_global_handle_count;
150   heap_stats.free_global_handle_count = &free_global_handle_count;
151   intptr_t memory_allocator_size;
152   heap_stats.memory_allocator_size = &memory_allocator_size;
153   intptr_t memory_allocator_capacity;
154   heap_stats.memory_allocator_capacity = &memory_allocator_capacity;
155   int objects_per_type[LAST_TYPE + 1] = {0};
156   heap_stats.objects_per_type = objects_per_type;
157   int size_per_type[LAST_TYPE + 1] = {0};
158   heap_stats.size_per_type = size_per_type;
159   int os_error;
160   heap_stats.os_error = &os_error;
161   int end_marker;
162   heap_stats.end_marker = &end_marker;
163   i::Isolate* isolate = i::Isolate::Current();
164   if (isolate->heap()->HasBeenSetUp()) {
165     // BUG(1718): Don't use the take_snapshot since we don't support
166     // HeapIterator here without doing a special GC.
167     isolate->heap()->RecordStats(&heap_stats, false);
168   }
169   Utils::ApiCheck(false, location, "Allocation failed - process out of memory");
170   // If the fatal error handler returns, we stop execution.
171   FATAL("API fatal error handler returned after process out of memory");
172 }
173 
174 
ReportApiFailure(const char * location,const char * message)175 void Utils::ReportApiFailure(const char* location, const char* message) {
176   i::Isolate* isolate = i::Isolate::Current();
177   FatalErrorCallback callback = isolate->exception_behavior();
178   if (callback == NULL) {
179     i::OS::PrintError("\n#\n# Fatal error in %s\n# %s\n#\n\n",
180                       location, message);
181     i::OS::Abort();
182   } else {
183     callback(location, message);
184   }
185   isolate->SignalFatalError();
186 }
187 
188 
IsDead()189 bool V8::IsDead() {
190   i::Isolate* isolate = i::Isolate::Current();
191   return isolate->IsDead();
192 }
193 
194 
IsExecutionTerminatingCheck(i::Isolate * isolate)195 static inline bool IsExecutionTerminatingCheck(i::Isolate* isolate) {
196   if (!isolate->IsInitialized()) return false;
197   if (isolate->has_scheduled_exception()) {
198     return isolate->scheduled_exception() ==
199         isolate->heap()->termination_exception();
200   }
201   return false;
202 }
203 
204 
205 // --- S t a t i c s ---
206 
207 
InitializeHelper(i::Isolate * isolate)208 static bool InitializeHelper(i::Isolate* isolate) {
209   // If the isolate has a function entry hook, it needs to re-build all its
210   // code stubs with entry hooks embedded, so let's deserialize a snapshot.
211   if (isolate == NULL || isolate->function_entry_hook() == NULL) {
212     if (i::Snapshot::Initialize())
213       return true;
214   }
215   return i::V8::Initialize(NULL);
216 }
217 
218 
EnsureInitializedForIsolate(i::Isolate * isolate,const char * location)219 static inline bool EnsureInitializedForIsolate(i::Isolate* isolate,
220                                                const char* location) {
221   return (isolate != NULL && isolate->IsInitialized()) ||
222       Utils::ApiCheck(InitializeHelper(isolate),
223                       location,
224                       "Error initializing V8");
225 }
226 
227 
StartupDataDecompressor()228 StartupDataDecompressor::StartupDataDecompressor()
229     : raw_data(i::NewArray<char*>(V8::GetCompressedStartupDataCount())) {
230   for (int i = 0; i < V8::GetCompressedStartupDataCount(); ++i) {
231     raw_data[i] = NULL;
232   }
233 }
234 
235 
~StartupDataDecompressor()236 StartupDataDecompressor::~StartupDataDecompressor() {
237   for (int i = 0; i < V8::GetCompressedStartupDataCount(); ++i) {
238     i::DeleteArray(raw_data[i]);
239   }
240   i::DeleteArray(raw_data);
241 }
242 
243 
Decompress()244 int StartupDataDecompressor::Decompress() {
245   int compressed_data_count = V8::GetCompressedStartupDataCount();
246   StartupData* compressed_data =
247       i::NewArray<StartupData>(compressed_data_count);
248   V8::GetCompressedStartupData(compressed_data);
249   for (int i = 0; i < compressed_data_count; ++i) {
250     char* decompressed = raw_data[i] =
251         i::NewArray<char>(compressed_data[i].raw_size);
252     if (compressed_data[i].compressed_size != 0) {
253       int result = DecompressData(decompressed,
254                                   &compressed_data[i].raw_size,
255                                   compressed_data[i].data,
256                                   compressed_data[i].compressed_size);
257       if (result != 0) return result;
258     } else {
259       ASSERT_EQ(0, compressed_data[i].raw_size);
260     }
261     compressed_data[i].data = decompressed;
262   }
263   V8::SetDecompressedStartupData(compressed_data);
264   i::DeleteArray(compressed_data);
265   return 0;
266 }
267 
268 
GetCompressedStartupDataAlgorithm()269 StartupData::CompressionAlgorithm V8::GetCompressedStartupDataAlgorithm() {
270 #ifdef COMPRESS_STARTUP_DATA_BZ2
271   return StartupData::kBZip2;
272 #else
273   return StartupData::kUncompressed;
274 #endif
275 }
276 
277 
278 enum CompressedStartupDataItems {
279   kSnapshot = 0,
280   kSnapshotContext,
281   kLibraries,
282   kExperimentalLibraries,
283   kCompressedStartupDataCount
284 };
285 
286 
GetCompressedStartupDataCount()287 int V8::GetCompressedStartupDataCount() {
288 #ifdef COMPRESS_STARTUP_DATA_BZ2
289   return kCompressedStartupDataCount;
290 #else
291   return 0;
292 #endif
293 }
294 
295 
GetCompressedStartupData(StartupData * compressed_data)296 void V8::GetCompressedStartupData(StartupData* compressed_data) {
297 #ifdef COMPRESS_STARTUP_DATA_BZ2
298   compressed_data[kSnapshot].data =
299       reinterpret_cast<const char*>(i::Snapshot::data());
300   compressed_data[kSnapshot].compressed_size = i::Snapshot::size();
301   compressed_data[kSnapshot].raw_size = i::Snapshot::raw_size();
302 
303   compressed_data[kSnapshotContext].data =
304       reinterpret_cast<const char*>(i::Snapshot::context_data());
305   compressed_data[kSnapshotContext].compressed_size =
306       i::Snapshot::context_size();
307   compressed_data[kSnapshotContext].raw_size = i::Snapshot::context_raw_size();
308 
309   i::Vector<const i::byte> libraries_source = i::Natives::GetScriptsSource();
310   compressed_data[kLibraries].data =
311       reinterpret_cast<const char*>(libraries_source.start());
312   compressed_data[kLibraries].compressed_size = libraries_source.length();
313   compressed_data[kLibraries].raw_size = i::Natives::GetRawScriptsSize();
314 
315   i::Vector<const i::byte> exp_libraries_source =
316       i::ExperimentalNatives::GetScriptsSource();
317   compressed_data[kExperimentalLibraries].data =
318       reinterpret_cast<const char*>(exp_libraries_source.start());
319   compressed_data[kExperimentalLibraries].compressed_size =
320       exp_libraries_source.length();
321   compressed_data[kExperimentalLibraries].raw_size =
322       i::ExperimentalNatives::GetRawScriptsSize();
323 #endif
324 }
325 
326 
SetDecompressedStartupData(StartupData * decompressed_data)327 void V8::SetDecompressedStartupData(StartupData* decompressed_data) {
328 #ifdef COMPRESS_STARTUP_DATA_BZ2
329   ASSERT_EQ(i::Snapshot::raw_size(), decompressed_data[kSnapshot].raw_size);
330   i::Snapshot::set_raw_data(
331       reinterpret_cast<const i::byte*>(decompressed_data[kSnapshot].data));
332 
333   ASSERT_EQ(i::Snapshot::context_raw_size(),
334             decompressed_data[kSnapshotContext].raw_size);
335   i::Snapshot::set_context_raw_data(
336       reinterpret_cast<const i::byte*>(
337           decompressed_data[kSnapshotContext].data));
338 
339   ASSERT_EQ(i::Natives::GetRawScriptsSize(),
340             decompressed_data[kLibraries].raw_size);
341   i::Vector<const char> libraries_source(
342       decompressed_data[kLibraries].data,
343       decompressed_data[kLibraries].raw_size);
344   i::Natives::SetRawScriptsSource(libraries_source);
345 
346   ASSERT_EQ(i::ExperimentalNatives::GetRawScriptsSize(),
347             decompressed_data[kExperimentalLibraries].raw_size);
348   i::Vector<const char> exp_libraries_source(
349       decompressed_data[kExperimentalLibraries].data,
350       decompressed_data[kExperimentalLibraries].raw_size);
351   i::ExperimentalNatives::SetRawScriptsSource(exp_libraries_source);
352 #endif
353 }
354 
355 
SetFatalErrorHandler(FatalErrorCallback that)356 void V8::SetFatalErrorHandler(FatalErrorCallback that) {
357   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
358   isolate->set_exception_behavior(that);
359 }
360 
361 
SetAllowCodeGenerationFromStringsCallback(AllowCodeGenerationFromStringsCallback callback)362 void V8::SetAllowCodeGenerationFromStringsCallback(
363     AllowCodeGenerationFromStringsCallback callback) {
364   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
365   isolate->set_allow_code_gen_callback(callback);
366 }
367 
368 
SetFlagsFromString(const char * str,int length)369 void V8::SetFlagsFromString(const char* str, int length) {
370   i::FlagList::SetFlagsFromString(str, length);
371 }
372 
373 
SetFlagsFromCommandLine(int * argc,char ** argv,bool remove_flags)374 void V8::SetFlagsFromCommandLine(int* argc, char** argv, bool remove_flags) {
375   i::FlagList::SetFlagsFromCommandLine(argc, argv, remove_flags);
376 }
377 
378 
379 RegisteredExtension* RegisteredExtension::first_extension_ = NULL;
380 
381 
RegisteredExtension(Extension * extension)382 RegisteredExtension::RegisteredExtension(Extension* extension)
383     : extension_(extension) { }
384 
385 
Register(RegisteredExtension * that)386 void RegisteredExtension::Register(RegisteredExtension* that) {
387   that->next_ = first_extension_;
388   first_extension_ = that;
389 }
390 
391 
UnregisterAll()392 void RegisteredExtension::UnregisterAll() {
393   RegisteredExtension* re = first_extension_;
394   while (re != NULL) {
395     RegisteredExtension* next = re->next();
396     delete re;
397     re = next;
398   }
399 }
400 
401 
RegisterExtension(Extension * that)402 void RegisterExtension(Extension* that) {
403   RegisteredExtension* extension = new RegisteredExtension(that);
404   RegisteredExtension::Register(extension);
405 }
406 
407 
Extension(const char * name,const char * source,int dep_count,const char ** deps,int source_length)408 Extension::Extension(const char* name,
409                      const char* source,
410                      int dep_count,
411                      const char** deps,
412                      int source_length)
413     : name_(name),
414       source_length_(source_length >= 0 ?
415                      source_length :
416                      (source ? static_cast<int>(strlen(source)) : 0)),
417       source_(source, source_length_),
418       dep_count_(dep_count),
419       deps_(deps),
420       auto_enable_(false) {
421   CHECK(source != NULL || source_length_ == 0);
422 }
423 
424 
ResourceConstraints()425 ResourceConstraints::ResourceConstraints()
426     : max_semi_space_size_(0),
427       max_old_space_size_(0),
428       max_executable_size_(0),
429       stack_limit_(NULL),
430       max_available_threads_(0),
431       code_range_size_(0) { }
432 
ConfigureDefaults(uint64_t physical_memory,uint64_t virtual_memory_limit,uint32_t number_of_processors)433 void ResourceConstraints::ConfigureDefaults(uint64_t physical_memory,
434                                             uint64_t virtual_memory_limit,
435                                             uint32_t number_of_processors) {
436 #if V8_OS_ANDROID
437   // Android has higher physical memory requirements before raising the maximum
438   // heap size limits since it has no swap space.
439   const uint64_t low_limit = 512ul * i::MB;
440   const uint64_t medium_limit = 1ul * i::GB;
441   const uint64_t high_limit = 2ul * i::GB;
442 #else
443   const uint64_t low_limit = 512ul * i::MB;
444   const uint64_t medium_limit = 768ul * i::MB;
445   const uint64_t high_limit = 1ul  * i::GB;
446 #endif
447 
448   if (physical_memory <= low_limit) {
449     set_max_semi_space_size(i::Heap::kMaxSemiSpaceSizeLowMemoryDevice);
450     set_max_old_space_size(i::Heap::kMaxOldSpaceSizeLowMemoryDevice);
451     set_max_executable_size(i::Heap::kMaxExecutableSizeLowMemoryDevice);
452   } else if (physical_memory <= medium_limit) {
453     set_max_semi_space_size(i::Heap::kMaxSemiSpaceSizeMediumMemoryDevice);
454     set_max_old_space_size(i::Heap::kMaxOldSpaceSizeMediumMemoryDevice);
455     set_max_executable_size(i::Heap::kMaxExecutableSizeMediumMemoryDevice);
456   } else if (physical_memory <= high_limit) {
457     set_max_semi_space_size(i::Heap::kMaxSemiSpaceSizeHighMemoryDevice);
458     set_max_old_space_size(i::Heap::kMaxOldSpaceSizeHighMemoryDevice);
459     set_max_executable_size(i::Heap::kMaxExecutableSizeHighMemoryDevice);
460   } else {
461     set_max_semi_space_size(i::Heap::kMaxSemiSpaceSizeHugeMemoryDevice);
462     set_max_old_space_size(i::Heap::kMaxOldSpaceSizeHugeMemoryDevice);
463     set_max_executable_size(i::Heap::kMaxExecutableSizeHugeMemoryDevice);
464   }
465 
466   set_max_available_threads(i::Max(i::Min(number_of_processors, 4u), 1u));
467 
468   if (virtual_memory_limit > 0 && i::kRequiresCodeRange) {
469     // Reserve no more than 1/8 of the memory for the code range, but at most
470     // kMaximalCodeRangeSize.
471     set_code_range_size(
472         i::Min(i::kMaximalCodeRangeSize / i::MB,
473                static_cast<size_t>((virtual_memory_limit >> 3) / i::MB)));
474   }
475 }
476 
477 
SetResourceConstraints(Isolate * v8_isolate,ResourceConstraints * constraints)478 bool SetResourceConstraints(Isolate* v8_isolate,
479                             ResourceConstraints* constraints) {
480   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
481   int semi_space_size = constraints->max_semi_space_size();
482   int old_space_size = constraints->max_old_space_size();
483   int max_executable_size = constraints->max_executable_size();
484   size_t code_range_size = constraints->code_range_size();
485   if (semi_space_size != 0 || old_space_size != 0 ||
486       max_executable_size != 0 || code_range_size != 0) {
487     // After initialization it's too late to change Heap constraints.
488     ASSERT(!isolate->IsInitialized());
489     bool result = isolate->heap()->ConfigureHeap(semi_space_size,
490                                                  old_space_size,
491                                                  max_executable_size,
492                                                  code_range_size);
493     if (!result) return false;
494   }
495   if (constraints->stack_limit() != NULL) {
496     uintptr_t limit = reinterpret_cast<uintptr_t>(constraints->stack_limit());
497     isolate->stack_guard()->SetStackLimit(limit);
498   }
499 
500   isolate->set_max_available_threads(constraints->max_available_threads());
501   return true;
502 }
503 
504 
GlobalizeReference(i::Isolate * isolate,i::Object ** obj)505 i::Object** V8::GlobalizeReference(i::Isolate* isolate, i::Object** obj) {
506   LOG_API(isolate, "Persistent::New");
507   i::Handle<i::Object> result = isolate->global_handles()->Create(*obj);
508 #ifdef DEBUG
509   (*obj)->ObjectVerify();
510 #endif  // DEBUG
511   return result.location();
512 }
513 
514 
CopyPersistent(i::Object ** obj)515 i::Object** V8::CopyPersistent(i::Object** obj) {
516   i::Handle<i::Object> result = i::GlobalHandles::CopyGlobal(obj);
517 #ifdef DEBUG
518   (*obj)->ObjectVerify();
519 #endif  // DEBUG
520   return result.location();
521 }
522 
523 
MakeWeak(i::Object ** object,void * parameters,WeakCallback weak_callback)524 void V8::MakeWeak(i::Object** object,
525                   void* parameters,
526                   WeakCallback weak_callback) {
527   i::GlobalHandles::MakeWeak(object, parameters, weak_callback);
528 }
529 
530 
ClearWeak(i::Object ** obj)531 void* V8::ClearWeak(i::Object** obj) {
532   return i::GlobalHandles::ClearWeakness(obj);
533 }
534 
535 
DisposeGlobal(i::Object ** obj)536 void V8::DisposeGlobal(i::Object** obj) {
537   i::GlobalHandles::Destroy(obj);
538 }
539 
540 
Eternalize(Isolate * v8_isolate,Value * value,int * index)541 void V8::Eternalize(Isolate* v8_isolate, Value* value, int* index) {
542   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
543   i::Object* object = *Utils::OpenHandle(value);
544   isolate->eternal_handles()->Create(isolate, object, index);
545 }
546 
547 
GetEternal(Isolate * v8_isolate,int index)548 Local<Value> V8::GetEternal(Isolate* v8_isolate, int index) {
549   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
550   return Utils::ToLocal(isolate->eternal_handles()->Get(index));
551 }
552 
553 
554 // --- H a n d l e s ---
555 
556 
HandleScope(Isolate * isolate)557 HandleScope::HandleScope(Isolate* isolate) {
558   Initialize(isolate);
559 }
560 
561 
Initialize(Isolate * isolate)562 void HandleScope::Initialize(Isolate* isolate) {
563   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
564   // We do not want to check the correct usage of the Locker class all over the
565   // place, so we do it only here: Without a HandleScope, an embedder can do
566   // almost nothing, so it is enough to check in this central place.
567   Utils::ApiCheck(!v8::Locker::IsActive() ||
568                   internal_isolate->thread_manager()->IsLockedByCurrentThread(),
569                   "HandleScope::HandleScope",
570                   "Entering the V8 API without proper locking in place");
571   i::HandleScopeData* current = internal_isolate->handle_scope_data();
572   isolate_ = internal_isolate;
573   prev_next_ = current->next;
574   prev_limit_ = current->limit;
575   current->level++;
576 }
577 
578 
~HandleScope()579 HandleScope::~HandleScope() {
580   i::HandleScope::CloseScope(isolate_, prev_next_, prev_limit_);
581 }
582 
583 
NumberOfHandles(Isolate * isolate)584 int HandleScope::NumberOfHandles(Isolate* isolate) {
585   return i::HandleScope::NumberOfHandles(
586       reinterpret_cast<i::Isolate*>(isolate));
587 }
588 
589 
CreateHandle(i::Isolate * isolate,i::Object * value)590 i::Object** HandleScope::CreateHandle(i::Isolate* isolate, i::Object* value) {
591   return i::HandleScope::CreateHandle(isolate, value);
592 }
593 
594 
CreateHandle(i::HeapObject * heap_object,i::Object * value)595 i::Object** HandleScope::CreateHandle(i::HeapObject* heap_object,
596                                       i::Object* value) {
597   ASSERT(heap_object->IsHeapObject());
598   return i::HandleScope::CreateHandle(heap_object->GetIsolate(), value);
599 }
600 
601 
EscapableHandleScope(Isolate * v8_isolate)602 EscapableHandleScope::EscapableHandleScope(Isolate* v8_isolate) {
603   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
604   escape_slot_ = CreateHandle(isolate, isolate->heap()->the_hole_value());
605   Initialize(v8_isolate);
606 }
607 
608 
Escape(i::Object ** escape_value)609 i::Object** EscapableHandleScope::Escape(i::Object** escape_value) {
610   i::Heap* heap = reinterpret_cast<i::Isolate*>(GetIsolate())->heap();
611   Utils::ApiCheck(*escape_slot_ == heap->the_hole_value(),
612                   "EscapeableHandleScope::Escape",
613                   "Escape value set twice");
614   if (escape_value == NULL) {
615     *escape_slot_ = heap->undefined_value();
616     return NULL;
617   }
618   *escape_slot_ = *escape_value;
619   return escape_slot_;
620 }
621 
622 
Enter()623 void Context::Enter() {
624   i::Handle<i::Context> env = Utils::OpenHandle(this);
625   i::Isolate* isolate = env->GetIsolate();
626   ENTER_V8(isolate);
627   i::HandleScopeImplementer* impl = isolate->handle_scope_implementer();
628   impl->EnterContext(env);
629   impl->SaveContext(isolate->context());
630   isolate->set_context(*env);
631 }
632 
633 
Exit()634 void Context::Exit() {
635   i::Handle<i::Context> env = Utils::OpenHandle(this);
636   i::Isolate* isolate = env->GetIsolate();
637   ENTER_V8(isolate);
638   i::HandleScopeImplementer* impl = isolate->handle_scope_implementer();
639   if (!Utils::ApiCheck(impl->LastEnteredContextWas(env),
640                        "v8::Context::Exit()",
641                        "Cannot exit non-entered context")) {
642     return;
643   }
644   impl->LeaveContext();
645   isolate->set_context(impl->RestoreContext());
646 }
647 
648 
DecodeSmiToAligned(i::Object * value,const char * location)649 static void* DecodeSmiToAligned(i::Object* value, const char* location) {
650   Utils::ApiCheck(value->IsSmi(), location, "Not a Smi");
651   return reinterpret_cast<void*>(value);
652 }
653 
654 
EncodeAlignedAsSmi(void * value,const char * location)655 static i::Smi* EncodeAlignedAsSmi(void* value, const char* location) {
656   i::Smi* smi = reinterpret_cast<i::Smi*>(value);
657   Utils::ApiCheck(smi->IsSmi(), location, "Pointer is not aligned");
658   return smi;
659 }
660 
661 
EmbedderDataFor(Context * context,int index,bool can_grow,const char * location)662 static i::Handle<i::FixedArray> EmbedderDataFor(Context* context,
663                                                 int index,
664                                                 bool can_grow,
665                                                 const char* location) {
666   i::Handle<i::Context> env = Utils::OpenHandle(context);
667   bool ok =
668       Utils::ApiCheck(env->IsNativeContext(),
669                       location,
670                       "Not a native context") &&
671       Utils::ApiCheck(index >= 0, location, "Negative index");
672   if (!ok) return i::Handle<i::FixedArray>();
673   i::Handle<i::FixedArray> data(env->embedder_data());
674   if (index < data->length()) return data;
675   if (!Utils::ApiCheck(can_grow, location, "Index too large")) {
676     return i::Handle<i::FixedArray>();
677   }
678   int new_size = i::Max(index, data->length() << 1) + 1;
679   data = i::FixedArray::CopySize(data, new_size);
680   env->set_embedder_data(*data);
681   return data;
682 }
683 
684 
SlowGetEmbedderData(int index)685 v8::Local<v8::Value> Context::SlowGetEmbedderData(int index) {
686   const char* location = "v8::Context::GetEmbedderData()";
687   i::Handle<i::FixedArray> data = EmbedderDataFor(this, index, false, location);
688   if (data.is_null()) return Local<Value>();
689   i::Handle<i::Object> result(data->get(index), data->GetIsolate());
690   return Utils::ToLocal(result);
691 }
692 
693 
SetEmbedderData(int index,v8::Handle<Value> value)694 void Context::SetEmbedderData(int index, v8::Handle<Value> value) {
695   const char* location = "v8::Context::SetEmbedderData()";
696   i::Handle<i::FixedArray> data = EmbedderDataFor(this, index, true, location);
697   if (data.is_null()) return;
698   i::Handle<i::Object> val = Utils::OpenHandle(*value);
699   data->set(index, *val);
700   ASSERT_EQ(*Utils::OpenHandle(*value),
701             *Utils::OpenHandle(*GetEmbedderData(index)));
702 }
703 
704 
SlowGetAlignedPointerFromEmbedderData(int index)705 void* Context::SlowGetAlignedPointerFromEmbedderData(int index) {
706   const char* location = "v8::Context::GetAlignedPointerFromEmbedderData()";
707   i::Handle<i::FixedArray> data = EmbedderDataFor(this, index, false, location);
708   if (data.is_null()) return NULL;
709   return DecodeSmiToAligned(data->get(index), location);
710 }
711 
712 
SetAlignedPointerInEmbedderData(int index,void * value)713 void Context::SetAlignedPointerInEmbedderData(int index, void* value) {
714   const char* location = "v8::Context::SetAlignedPointerInEmbedderData()";
715   i::Handle<i::FixedArray> data = EmbedderDataFor(this, index, true, location);
716   data->set(index, EncodeAlignedAsSmi(value, location));
717   ASSERT_EQ(value, GetAlignedPointerFromEmbedderData(index));
718 }
719 
720 
721 // --- N e a n d e r ---
722 
723 
724 // A constructor cannot easily return an error value, therefore it is necessary
725 // to check for a dead VM with ON_BAILOUT before constructing any Neander
726 // objects.  To remind you about this there is no HandleScope in the
727 // NeanderObject constructor.  When you add one to the site calling the
728 // constructor you should check that you ensured the VM was not dead first.
NeanderObject(v8::internal::Isolate * isolate,int size)729 NeanderObject::NeanderObject(v8::internal::Isolate* isolate, int size) {
730   EnsureInitializedForIsolate(isolate, "v8::Nowhere");
731   ENTER_V8(isolate);
732   value_ = isolate->factory()->NewNeanderObject();
733   i::Handle<i::FixedArray> elements = isolate->factory()->NewFixedArray(size);
734   value_->set_elements(*elements);
735 }
736 
737 
size()738 int NeanderObject::size() {
739   return i::FixedArray::cast(value_->elements())->length();
740 }
741 
742 
NeanderArray(v8::internal::Isolate * isolate)743 NeanderArray::NeanderArray(v8::internal::Isolate* isolate) : obj_(isolate, 2) {
744   obj_.set(0, i::Smi::FromInt(0));
745 }
746 
747 
length()748 int NeanderArray::length() {
749   return i::Smi::cast(obj_.get(0))->value();
750 }
751 
752 
get(int offset)753 i::Object* NeanderArray::get(int offset) {
754   ASSERT(0 <= offset);
755   ASSERT(offset < length());
756   return obj_.get(offset + 1);
757 }
758 
759 
760 // This method cannot easily return an error value, therefore it is necessary
761 // to check for a dead VM with ON_BAILOUT before calling it.  To remind you
762 // about this there is no HandleScope in this method.  When you add one to the
763 // site calling this method you should check that you ensured the VM was not
764 // dead first.
add(i::Handle<i::Object> value)765 void NeanderArray::add(i::Handle<i::Object> value) {
766   int length = this->length();
767   int size = obj_.size();
768   if (length == size - 1) {
769     i::Factory* factory = i::Isolate::Current()->factory();
770     i::Handle<i::FixedArray> new_elms = factory->NewFixedArray(2 * size);
771     for (int i = 0; i < length; i++)
772       new_elms->set(i + 1, get(i));
773     obj_.value()->set_elements(*new_elms);
774   }
775   obj_.set(length + 1, *value);
776   obj_.set(0, i::Smi::FromInt(length + 1));
777 }
778 
779 
set(int index,i::Object * value)780 void NeanderArray::set(int index, i::Object* value) {
781   if (index < 0 || index >= this->length()) return;
782   obj_.set(index + 1, value);
783 }
784 
785 
786 // --- T e m p l a t e ---
787 
788 
InitializeTemplate(i::Handle<i::TemplateInfo> that,int type)789 static void InitializeTemplate(i::Handle<i::TemplateInfo> that, int type) {
790   that->set_tag(i::Smi::FromInt(type));
791 }
792 
793 
TemplateSet(i::Isolate * isolate,v8::Template * templ,int length,v8::Handle<v8::Data> * data)794 static void TemplateSet(i::Isolate* isolate,
795                         v8::Template* templ,
796                         int length,
797                         v8::Handle<v8::Data>* data) {
798   i::Handle<i::Object> list(Utils::OpenHandle(templ)->property_list(), isolate);
799   if (list->IsUndefined()) {
800     list = NeanderArray(isolate).value();
801     Utils::OpenHandle(templ)->set_property_list(*list);
802   }
803   NeanderArray array(list);
804   array.add(isolate->factory()->NewNumberFromInt(length));
805   for (int i = 0; i < length; i++) {
806     i::Handle<i::Object> value = data[i].IsEmpty() ?
807         i::Handle<i::Object>(isolate->factory()->undefined_value()) :
808         Utils::OpenHandle(*data[i]);
809     array.add(value);
810   }
811 }
812 
813 
Set(v8::Handle<String> name,v8::Handle<Data> value,v8::PropertyAttribute attribute)814 void Template::Set(v8::Handle<String> name,
815                    v8::Handle<Data> value,
816                    v8::PropertyAttribute attribute) {
817   i::Isolate* isolate = i::Isolate::Current();
818   ENTER_V8(isolate);
819   i::HandleScope scope(isolate);
820   const int kSize = 3;
821   v8::Isolate* v8_isolate = reinterpret_cast<v8::Isolate*>(isolate);
822   v8::Handle<v8::Data> data[kSize] = {
823     name,
824     value,
825     v8::Integer::New(v8_isolate, attribute)};
826   TemplateSet(isolate, this, kSize, data);
827 }
828 
829 
SetAccessorProperty(v8::Local<v8::String> name,v8::Local<FunctionTemplate> getter,v8::Local<FunctionTemplate> setter,v8::PropertyAttribute attribute,v8::AccessControl access_control)830 void Template::SetAccessorProperty(
831     v8::Local<v8::String> name,
832     v8::Local<FunctionTemplate> getter,
833     v8::Local<FunctionTemplate> setter,
834     v8::PropertyAttribute attribute,
835     v8::AccessControl access_control) {
836   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
837   ENTER_V8(isolate);
838   ASSERT(!name.IsEmpty());
839   ASSERT(!getter.IsEmpty() || !setter.IsEmpty());
840   i::HandleScope scope(isolate);
841   const int kSize = 5;
842   v8::Isolate* v8_isolate = reinterpret_cast<v8::Isolate*>(isolate);
843   v8::Handle<v8::Data> data[kSize] = {
844     name,
845     getter,
846     setter,
847     v8::Integer::New(v8_isolate, attribute),
848     v8::Integer::New(v8_isolate, access_control)};
849   TemplateSet(isolate, this, kSize, data);
850 }
851 
852 
853 // --- F u n c t i o n   T e m p l a t e ---
InitializeFunctionTemplate(i::Handle<i::FunctionTemplateInfo> info)854 static void InitializeFunctionTemplate(
855     i::Handle<i::FunctionTemplateInfo> info) {
856   info->set_tag(i::Smi::FromInt(Consts::FUNCTION_TEMPLATE));
857   info->set_flag(0);
858 }
859 
860 
PrototypeTemplate()861 Local<ObjectTemplate> FunctionTemplate::PrototypeTemplate() {
862   i::Isolate* i_isolate = Utils::OpenHandle(this)->GetIsolate();
863   ENTER_V8(i_isolate);
864   i::Handle<i::Object> result(Utils::OpenHandle(this)->prototype_template(),
865                               i_isolate);
866   if (result->IsUndefined()) {
867     v8::Isolate* isolate = reinterpret_cast<v8::Isolate*>(i_isolate);
868     result = Utils::OpenHandle(*ObjectTemplate::New(isolate));
869     Utils::OpenHandle(this)->set_prototype_template(*result);
870   }
871   return ToApiHandle<ObjectTemplate>(result);
872 }
873 
874 
Inherit(v8::Handle<FunctionTemplate> value)875 void FunctionTemplate::Inherit(v8::Handle<FunctionTemplate> value) {
876   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
877   ENTER_V8(isolate);
878   Utils::OpenHandle(this)->set_parent_template(*Utils::OpenHandle(*value));
879 }
880 
881 
FunctionTemplateNew(i::Isolate * isolate,FunctionCallback callback,v8::Handle<Value> data,v8::Handle<Signature> signature,int length,bool do_not_cache)882 static Local<FunctionTemplate> FunctionTemplateNew(
883     i::Isolate* isolate,
884     FunctionCallback callback,
885     v8::Handle<Value> data,
886     v8::Handle<Signature> signature,
887     int length,
888     bool do_not_cache) {
889   i::Handle<i::Struct> struct_obj =
890       isolate->factory()->NewStruct(i::FUNCTION_TEMPLATE_INFO_TYPE);
891   i::Handle<i::FunctionTemplateInfo> obj =
892       i::Handle<i::FunctionTemplateInfo>::cast(struct_obj);
893   InitializeFunctionTemplate(obj);
894   obj->set_do_not_cache(do_not_cache);
895   int next_serial_number = 0;
896   if (!do_not_cache) {
897     next_serial_number = isolate->next_serial_number() + 1;
898     isolate->set_next_serial_number(next_serial_number);
899   }
900   obj->set_serial_number(i::Smi::FromInt(next_serial_number));
901   if (callback != 0) {
902     if (data.IsEmpty()) {
903       data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
904     }
905     Utils::ToLocal(obj)->SetCallHandler(callback, data);
906   }
907   obj->set_length(length);
908   obj->set_undetectable(false);
909   obj->set_needs_access_check(false);
910   if (!signature.IsEmpty())
911     obj->set_signature(*Utils::OpenHandle(*signature));
912   return Utils::ToLocal(obj);
913 }
914 
New(Isolate * isolate,FunctionCallback callback,v8::Handle<Value> data,v8::Handle<Signature> signature,int length)915 Local<FunctionTemplate> FunctionTemplate::New(
916     Isolate* isolate,
917     FunctionCallback callback,
918     v8::Handle<Value> data,
919     v8::Handle<Signature> signature,
920     int length) {
921   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
922   EnsureInitializedForIsolate(i_isolate, "v8::FunctionTemplate::New()");
923   LOG_API(i_isolate, "FunctionTemplate::New");
924   ENTER_V8(i_isolate);
925   return FunctionTemplateNew(
926       i_isolate, callback, data, signature, length, false);
927 }
928 
929 
New(Isolate * isolate,Handle<FunctionTemplate> receiver,int argc,Handle<FunctionTemplate> argv[])930 Local<Signature> Signature::New(Isolate* isolate,
931                                 Handle<FunctionTemplate> receiver, int argc,
932                                 Handle<FunctionTemplate> argv[]) {
933   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
934   EnsureInitializedForIsolate(i_isolate, "v8::Signature::New()");
935   LOG_API(i_isolate, "Signature::New");
936   ENTER_V8(i_isolate);
937   i::Handle<i::Struct> struct_obj =
938       i_isolate->factory()->NewStruct(i::SIGNATURE_INFO_TYPE);
939   i::Handle<i::SignatureInfo> obj =
940       i::Handle<i::SignatureInfo>::cast(struct_obj);
941   if (!receiver.IsEmpty()) obj->set_receiver(*Utils::OpenHandle(*receiver));
942   if (argc > 0) {
943     i::Handle<i::FixedArray> args = i_isolate->factory()->NewFixedArray(argc);
944     for (int i = 0; i < argc; i++) {
945       if (!argv[i].IsEmpty())
946         args->set(i, *Utils::OpenHandle(*argv[i]));
947     }
948     obj->set_args(*args);
949   }
950   return Utils::ToLocal(obj);
951 }
952 
953 
New(Isolate * isolate,Handle<FunctionTemplate> receiver)954 Local<AccessorSignature> AccessorSignature::New(
955     Isolate* isolate,
956     Handle<FunctionTemplate> receiver) {
957   return Utils::AccessorSignatureToLocal(Utils::OpenHandle(*receiver));
958 }
959 
960 
961 template<typename Operation>
NewDescriptor(Isolate * isolate,const i::DeclaredAccessorDescriptorData & data,Data * previous_descriptor)962 static Local<Operation> NewDescriptor(
963     Isolate* isolate,
964     const i::DeclaredAccessorDescriptorData& data,
965     Data* previous_descriptor) {
966   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
967   i::Handle<i::DeclaredAccessorDescriptor> previous =
968       i::Handle<i::DeclaredAccessorDescriptor>();
969   if (previous_descriptor != NULL) {
970     previous = Utils::OpenHandle(
971         static_cast<DeclaredAccessorDescriptor*>(previous_descriptor));
972   }
973   i::Handle<i::DeclaredAccessorDescriptor> descriptor =
974       i::DeclaredAccessorDescriptor::Create(internal_isolate, data, previous);
975   return Utils::Convert<i::DeclaredAccessorDescriptor, Operation>(descriptor);
976 }
977 
978 
979 Local<RawOperationDescriptor>
NewInternalFieldDereference(Isolate * isolate,int internal_field)980 ObjectOperationDescriptor::NewInternalFieldDereference(
981     Isolate* isolate,
982     int internal_field) {
983   i::DeclaredAccessorDescriptorData data;
984   data.type = i::kDescriptorObjectDereference;
985   data.object_dereference_descriptor.internal_field = internal_field;
986   return NewDescriptor<RawOperationDescriptor>(isolate, data, NULL);
987 }
988 
989 
NewRawShift(Isolate * isolate,int16_t byte_offset)990 Local<RawOperationDescriptor> RawOperationDescriptor::NewRawShift(
991     Isolate* isolate,
992     int16_t byte_offset) {
993   i::DeclaredAccessorDescriptorData data;
994   data.type = i::kDescriptorPointerShift;
995   data.pointer_shift_descriptor.byte_offset = byte_offset;
996   return NewDescriptor<RawOperationDescriptor>(isolate, data, this);
997 }
998 
999 
NewHandleDereference(Isolate * isolate)1000 Local<DeclaredAccessorDescriptor> RawOperationDescriptor::NewHandleDereference(
1001     Isolate* isolate) {
1002   i::DeclaredAccessorDescriptorData data;
1003   data.type = i::kDescriptorReturnObject;
1004   return NewDescriptor<DeclaredAccessorDescriptor>(isolate, data, this);
1005 }
1006 
1007 
NewRawDereference(Isolate * isolate)1008 Local<RawOperationDescriptor> RawOperationDescriptor::NewRawDereference(
1009     Isolate* isolate) {
1010   i::DeclaredAccessorDescriptorData data;
1011   data.type = i::kDescriptorPointerDereference;
1012   return NewDescriptor<RawOperationDescriptor>(isolate, data, this);
1013 }
1014 
1015 
NewPointerCompare(Isolate * isolate,void * compare_value)1016 Local<DeclaredAccessorDescriptor> RawOperationDescriptor::NewPointerCompare(
1017     Isolate* isolate,
1018     void* compare_value) {
1019   i::DeclaredAccessorDescriptorData data;
1020   data.type = i::kDescriptorPointerCompare;
1021   data.pointer_compare_descriptor.compare_value = compare_value;
1022   return NewDescriptor<DeclaredAccessorDescriptor>(isolate, data, this);
1023 }
1024 
1025 
NewPrimitiveValue(Isolate * isolate,DeclaredAccessorDescriptorDataType data_type,uint8_t bool_offset)1026 Local<DeclaredAccessorDescriptor> RawOperationDescriptor::NewPrimitiveValue(
1027     Isolate* isolate,
1028     DeclaredAccessorDescriptorDataType data_type,
1029     uint8_t bool_offset) {
1030   i::DeclaredAccessorDescriptorData data;
1031   data.type = i::kDescriptorPrimitiveValue;
1032   data.primitive_value_descriptor.data_type = data_type;
1033   data.primitive_value_descriptor.bool_offset = bool_offset;
1034   return NewDescriptor<DeclaredAccessorDescriptor>(isolate, data, this);
1035 }
1036 
1037 
1038 template<typename T>
NewBitmaskCompare(Isolate * isolate,T bitmask,T compare_value,RawOperationDescriptor * operation)1039 static Local<DeclaredAccessorDescriptor> NewBitmaskCompare(
1040     Isolate* isolate,
1041     T bitmask,
1042     T compare_value,
1043     RawOperationDescriptor* operation) {
1044   i::DeclaredAccessorDescriptorData data;
1045   data.type = i::kDescriptorBitmaskCompare;
1046   data.bitmask_compare_descriptor.bitmask = bitmask;
1047   data.bitmask_compare_descriptor.compare_value = compare_value;
1048   data.bitmask_compare_descriptor.size = sizeof(T);
1049   return NewDescriptor<DeclaredAccessorDescriptor>(isolate, data, operation);
1050 }
1051 
1052 
NewBitmaskCompare8(Isolate * isolate,uint8_t bitmask,uint8_t compare_value)1053 Local<DeclaredAccessorDescriptor> RawOperationDescriptor::NewBitmaskCompare8(
1054     Isolate* isolate,
1055     uint8_t bitmask,
1056     uint8_t compare_value) {
1057   return NewBitmaskCompare(isolate, bitmask, compare_value, this);
1058 }
1059 
1060 
NewBitmaskCompare16(Isolate * isolate,uint16_t bitmask,uint16_t compare_value)1061 Local<DeclaredAccessorDescriptor> RawOperationDescriptor::NewBitmaskCompare16(
1062     Isolate* isolate,
1063     uint16_t bitmask,
1064     uint16_t compare_value) {
1065   return NewBitmaskCompare(isolate, bitmask, compare_value, this);
1066 }
1067 
1068 
NewBitmaskCompare32(Isolate * isolate,uint32_t bitmask,uint32_t compare_value)1069 Local<DeclaredAccessorDescriptor> RawOperationDescriptor::NewBitmaskCompare32(
1070     Isolate* isolate,
1071     uint32_t bitmask,
1072     uint32_t compare_value) {
1073   return NewBitmaskCompare(isolate, bitmask, compare_value, this);
1074 }
1075 
1076 
New(Handle<FunctionTemplate> type)1077 Local<TypeSwitch> TypeSwitch::New(Handle<FunctionTemplate> type) {
1078   Handle<FunctionTemplate> types[1] = { type };
1079   return TypeSwitch::New(1, types);
1080 }
1081 
1082 
New(int argc,Handle<FunctionTemplate> types[])1083 Local<TypeSwitch> TypeSwitch::New(int argc, Handle<FunctionTemplate> types[]) {
1084   i::Isolate* isolate = i::Isolate::Current();
1085   EnsureInitializedForIsolate(isolate, "v8::TypeSwitch::New()");
1086   LOG_API(isolate, "TypeSwitch::New");
1087   ENTER_V8(isolate);
1088   i::Handle<i::FixedArray> vector = isolate->factory()->NewFixedArray(argc);
1089   for (int i = 0; i < argc; i++)
1090     vector->set(i, *Utils::OpenHandle(*types[i]));
1091   i::Handle<i::Struct> struct_obj =
1092       isolate->factory()->NewStruct(i::TYPE_SWITCH_INFO_TYPE);
1093   i::Handle<i::TypeSwitchInfo> obj =
1094       i::Handle<i::TypeSwitchInfo>::cast(struct_obj);
1095   obj->set_types(*vector);
1096   return Utils::ToLocal(obj);
1097 }
1098 
1099 
match(v8::Handle<Value> value)1100 int TypeSwitch::match(v8::Handle<Value> value) {
1101   i::Isolate* isolate = i::Isolate::Current();
1102   LOG_API(isolate, "TypeSwitch::match");
1103   USE(isolate);
1104   i::Handle<i::Object> obj = Utils::OpenHandle(*value);
1105   i::Handle<i::TypeSwitchInfo> info = Utils::OpenHandle(this);
1106   i::FixedArray* types = i::FixedArray::cast(info->types());
1107   for (int i = 0; i < types->length(); i++) {
1108     if (i::FunctionTemplateInfo::cast(types->get(i))->IsTemplateFor(*obj))
1109       return i + 1;
1110   }
1111   return 0;
1112 }
1113 
1114 
1115 #define SET_FIELD_WRAPPED(obj, setter, cdata) do {                      \
1116     i::Handle<i::Object> foreign = FromCData(obj->GetIsolate(), cdata); \
1117     (obj)->setter(*foreign);                                            \
1118   } while (false)
1119 
1120 
SetCallHandler(FunctionCallback callback,v8::Handle<Value> data)1121 void FunctionTemplate::SetCallHandler(FunctionCallback callback,
1122                                       v8::Handle<Value> data) {
1123   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1124   ENTER_V8(isolate);
1125   i::HandleScope scope(isolate);
1126   i::Handle<i::Struct> struct_obj =
1127       isolate->factory()->NewStruct(i::CALL_HANDLER_INFO_TYPE);
1128   i::Handle<i::CallHandlerInfo> obj =
1129       i::Handle<i::CallHandlerInfo>::cast(struct_obj);
1130   SET_FIELD_WRAPPED(obj, set_callback, callback);
1131   if (data.IsEmpty()) {
1132     data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
1133   }
1134   obj->set_data(*Utils::OpenHandle(*data));
1135   Utils::OpenHandle(this)->set_call_code(*obj);
1136 }
1137 
1138 
SetAccessorInfoProperties(i::Handle<i::AccessorInfo> obj,v8::Handle<String> name,v8::AccessControl settings,v8::PropertyAttribute attributes,v8::Handle<AccessorSignature> signature)1139 static i::Handle<i::AccessorInfo> SetAccessorInfoProperties(
1140     i::Handle<i::AccessorInfo> obj,
1141     v8::Handle<String> name,
1142     v8::AccessControl settings,
1143     v8::PropertyAttribute attributes,
1144     v8::Handle<AccessorSignature> signature) {
1145   obj->set_name(*Utils::OpenHandle(*name));
1146   if (settings & ALL_CAN_READ) obj->set_all_can_read(true);
1147   if (settings & ALL_CAN_WRITE) obj->set_all_can_write(true);
1148   obj->set_property_attributes(static_cast<PropertyAttributes>(attributes));
1149   if (!signature.IsEmpty()) {
1150     obj->set_expected_receiver_type(*Utils::OpenHandle(*signature));
1151   }
1152   return obj;
1153 }
1154 
1155 
1156 template<typename Getter, typename Setter>
MakeAccessorInfo(v8::Handle<String> name,Getter getter,Setter setter,v8::Handle<Value> data,v8::AccessControl settings,v8::PropertyAttribute attributes,v8::Handle<AccessorSignature> signature)1157 static i::Handle<i::AccessorInfo> MakeAccessorInfo(
1158     v8::Handle<String> name,
1159     Getter getter,
1160     Setter setter,
1161     v8::Handle<Value> data,
1162     v8::AccessControl settings,
1163     v8::PropertyAttribute attributes,
1164     v8::Handle<AccessorSignature> signature) {
1165   i::Isolate* isolate = Utils::OpenHandle(*name)->GetIsolate();
1166   i::Handle<i::ExecutableAccessorInfo> obj =
1167       isolate->factory()->NewExecutableAccessorInfo();
1168   SET_FIELD_WRAPPED(obj, set_getter, getter);
1169   SET_FIELD_WRAPPED(obj, set_setter, setter);
1170   if (data.IsEmpty()) {
1171     data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
1172   }
1173   obj->set_data(*Utils::OpenHandle(*data));
1174   return SetAccessorInfoProperties(obj, name, settings, attributes, signature);
1175 }
1176 
1177 
MakeAccessorInfo(v8::Handle<String> name,v8::Handle<v8::DeclaredAccessorDescriptor> descriptor,void * setter_ignored,void * data_ignored,v8::AccessControl settings,v8::PropertyAttribute attributes,v8::Handle<AccessorSignature> signature)1178 static i::Handle<i::AccessorInfo> MakeAccessorInfo(
1179     v8::Handle<String> name,
1180     v8::Handle<v8::DeclaredAccessorDescriptor> descriptor,
1181     void* setter_ignored,
1182     void* data_ignored,
1183     v8::AccessControl settings,
1184     v8::PropertyAttribute attributes,
1185     v8::Handle<AccessorSignature> signature) {
1186   i::Isolate* isolate = Utils::OpenHandle(*name)->GetIsolate();
1187   if (descriptor.IsEmpty()) return i::Handle<i::DeclaredAccessorInfo>();
1188   i::Handle<i::DeclaredAccessorInfo> obj =
1189       isolate->factory()->NewDeclaredAccessorInfo();
1190   obj->set_descriptor(*Utils::OpenHandle(*descriptor));
1191   return SetAccessorInfoProperties(obj, name, settings, attributes, signature);
1192 }
1193 
1194 
InstanceTemplate()1195 Local<ObjectTemplate> FunctionTemplate::InstanceTemplate() {
1196   i::Handle<i::FunctionTemplateInfo> handle = Utils::OpenHandle(this, true);
1197   if (!Utils::ApiCheck(!handle.is_null(),
1198                        "v8::FunctionTemplate::InstanceTemplate()",
1199                        "Reading from empty handle")) {
1200     return Local<ObjectTemplate>();
1201   }
1202   i::Isolate* isolate = handle->GetIsolate();
1203   ENTER_V8(isolate);
1204   if (handle->instance_template()->IsUndefined()) {
1205     Local<ObjectTemplate> templ =
1206         ObjectTemplate::New(isolate, ToApiHandle<FunctionTemplate>(handle));
1207     handle->set_instance_template(*Utils::OpenHandle(*templ));
1208   }
1209   i::Handle<i::ObjectTemplateInfo> result(
1210       i::ObjectTemplateInfo::cast(handle->instance_template()));
1211   return Utils::ToLocal(result);
1212 }
1213 
1214 
SetLength(int length)1215 void FunctionTemplate::SetLength(int length) {
1216   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1217   ENTER_V8(isolate);
1218   Utils::OpenHandle(this)->set_length(length);
1219 }
1220 
1221 
SetClassName(Handle<String> name)1222 void FunctionTemplate::SetClassName(Handle<String> name) {
1223   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1224   ENTER_V8(isolate);
1225   Utils::OpenHandle(this)->set_class_name(*Utils::OpenHandle(*name));
1226 }
1227 
1228 
SetHiddenPrototype(bool value)1229 void FunctionTemplate::SetHiddenPrototype(bool value) {
1230   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1231   ENTER_V8(isolate);
1232   Utils::OpenHandle(this)->set_hidden_prototype(value);
1233 }
1234 
1235 
ReadOnlyPrototype()1236 void FunctionTemplate::ReadOnlyPrototype() {
1237   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1238   ENTER_V8(isolate);
1239   Utils::OpenHandle(this)->set_read_only_prototype(true);
1240 }
1241 
1242 
RemovePrototype()1243 void FunctionTemplate::RemovePrototype() {
1244   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1245   ENTER_V8(isolate);
1246   Utils::OpenHandle(this)->set_remove_prototype(true);
1247 }
1248 
1249 
1250 // --- O b j e c t T e m p l a t e ---
1251 
1252 
New(Isolate * isolate)1253 Local<ObjectTemplate> ObjectTemplate::New(Isolate* isolate) {
1254   return New(reinterpret_cast<i::Isolate*>(isolate), Local<FunctionTemplate>());
1255 }
1256 
1257 
New()1258 Local<ObjectTemplate> ObjectTemplate::New() {
1259   return New(i::Isolate::Current(), Local<FunctionTemplate>());
1260 }
1261 
1262 
New(i::Isolate * isolate,v8::Handle<FunctionTemplate> constructor)1263 Local<ObjectTemplate> ObjectTemplate::New(
1264     i::Isolate* isolate,
1265     v8::Handle<FunctionTemplate> constructor) {
1266   EnsureInitializedForIsolate(isolate, "v8::ObjectTemplate::New()");
1267   LOG_API(isolate, "ObjectTemplate::New");
1268   ENTER_V8(isolate);
1269   i::Handle<i::Struct> struct_obj =
1270       isolate->factory()->NewStruct(i::OBJECT_TEMPLATE_INFO_TYPE);
1271   i::Handle<i::ObjectTemplateInfo> obj =
1272       i::Handle<i::ObjectTemplateInfo>::cast(struct_obj);
1273   InitializeTemplate(obj, Consts::OBJECT_TEMPLATE);
1274   if (!constructor.IsEmpty())
1275     obj->set_constructor(*Utils::OpenHandle(*constructor));
1276   obj->set_internal_field_count(i::Smi::FromInt(0));
1277   return Utils::ToLocal(obj);
1278 }
1279 
1280 
1281 // Ensure that the object template has a constructor.  If no
1282 // constructor is available we create one.
EnsureConstructor(i::Isolate * isolate,ObjectTemplate * object_template)1283 static i::Handle<i::FunctionTemplateInfo> EnsureConstructor(
1284     i::Isolate* isolate,
1285     ObjectTemplate* object_template) {
1286   i::Object* obj = Utils::OpenHandle(object_template)->constructor();
1287   if (!obj ->IsUndefined()) {
1288     i::FunctionTemplateInfo* info = i::FunctionTemplateInfo::cast(obj);
1289     return i::Handle<i::FunctionTemplateInfo>(info, isolate);
1290   }
1291   Local<FunctionTemplate> templ =
1292       FunctionTemplate::New(reinterpret_cast<Isolate*>(isolate));
1293   i::Handle<i::FunctionTemplateInfo> constructor = Utils::OpenHandle(*templ);
1294   constructor->set_instance_template(*Utils::OpenHandle(object_template));
1295   Utils::OpenHandle(object_template)->set_constructor(*constructor);
1296   return constructor;
1297 }
1298 
1299 
AddPropertyToTemplate(i::Handle<i::TemplateInfo> info,i::Handle<i::AccessorInfo> obj)1300 static inline void AddPropertyToTemplate(
1301     i::Handle<i::TemplateInfo> info,
1302     i::Handle<i::AccessorInfo> obj) {
1303   i::Isolate* isolate = info->GetIsolate();
1304   i::Handle<i::Object> list(info->property_accessors(), isolate);
1305   if (list->IsUndefined()) {
1306     list = NeanderArray(isolate).value();
1307     info->set_property_accessors(*list);
1308   }
1309   NeanderArray array(list);
1310   array.add(obj);
1311 }
1312 
1313 
GetTemplateInfo(i::Isolate * isolate,Template * template_obj)1314 static inline i::Handle<i::TemplateInfo> GetTemplateInfo(
1315     i::Isolate* isolate,
1316     Template* template_obj) {
1317   return Utils::OpenHandle(template_obj);
1318 }
1319 
1320 
1321 // TODO(dcarney): remove this with ObjectTemplate::SetAccessor
GetTemplateInfo(i::Isolate * isolate,ObjectTemplate * object_template)1322 static inline i::Handle<i::TemplateInfo> GetTemplateInfo(
1323     i::Isolate* isolate,
1324     ObjectTemplate* object_template) {
1325   EnsureConstructor(isolate, object_template);
1326   return Utils::OpenHandle(object_template);
1327 }
1328 
1329 
1330 template<typename Setter, typename Getter, typename Data, typename Template>
TemplateSetAccessor(Template * template_obj,v8::Local<String> name,Getter getter,Setter setter,Data data,AccessControl settings,PropertyAttribute attribute,v8::Local<AccessorSignature> signature)1331 static bool TemplateSetAccessor(
1332     Template* template_obj,
1333     v8::Local<String> name,
1334     Getter getter,
1335     Setter setter,
1336     Data data,
1337     AccessControl settings,
1338     PropertyAttribute attribute,
1339     v8::Local<AccessorSignature> signature) {
1340   i::Isolate* isolate = Utils::OpenHandle(template_obj)->GetIsolate();
1341   ENTER_V8(isolate);
1342   i::HandleScope scope(isolate);
1343   i::Handle<i::AccessorInfo> obj = MakeAccessorInfo(
1344       name, getter, setter, data, settings, attribute, signature);
1345   if (obj.is_null()) return false;
1346   i::Handle<i::TemplateInfo> info = GetTemplateInfo(isolate, template_obj);
1347   AddPropertyToTemplate(info, obj);
1348   return true;
1349 }
1350 
1351 
SetDeclaredAccessor(Local<String> name,Local<DeclaredAccessorDescriptor> descriptor,PropertyAttribute attribute,Local<AccessorSignature> signature,AccessControl settings)1352 bool Template::SetDeclaredAccessor(
1353     Local<String> name,
1354     Local<DeclaredAccessorDescriptor> descriptor,
1355     PropertyAttribute attribute,
1356     Local<AccessorSignature> signature,
1357     AccessControl settings) {
1358   void* null = NULL;
1359   return TemplateSetAccessor(
1360       this, name, descriptor, null, null, settings, attribute, signature);
1361 }
1362 
1363 
SetNativeDataProperty(v8::Local<String> name,AccessorGetterCallback getter,AccessorSetterCallback setter,v8::Handle<Value> data,PropertyAttribute attribute,v8::Local<AccessorSignature> signature,AccessControl settings)1364 void Template::SetNativeDataProperty(v8::Local<String> name,
1365                                      AccessorGetterCallback getter,
1366                                      AccessorSetterCallback setter,
1367                                      v8::Handle<Value> data,
1368                                      PropertyAttribute attribute,
1369                                      v8::Local<AccessorSignature> signature,
1370                                      AccessControl settings) {
1371   TemplateSetAccessor(
1372       this, name, getter, setter, data, settings, attribute, signature);
1373 }
1374 
1375 
SetAccessor(v8::Handle<String> name,AccessorGetterCallback getter,AccessorSetterCallback setter,v8::Handle<Value> data,AccessControl settings,PropertyAttribute attribute,v8::Handle<AccessorSignature> signature)1376 void ObjectTemplate::SetAccessor(v8::Handle<String> name,
1377                                  AccessorGetterCallback getter,
1378                                  AccessorSetterCallback setter,
1379                                  v8::Handle<Value> data,
1380                                  AccessControl settings,
1381                                  PropertyAttribute attribute,
1382                                  v8::Handle<AccessorSignature> signature) {
1383   TemplateSetAccessor(
1384       this, name, getter, setter, data, settings, attribute, signature);
1385 }
1386 
1387 
SetNamedPropertyHandler(NamedPropertyGetterCallback getter,NamedPropertySetterCallback setter,NamedPropertyQueryCallback query,NamedPropertyDeleterCallback remover,NamedPropertyEnumeratorCallback enumerator,Handle<Value> data)1388 void ObjectTemplate::SetNamedPropertyHandler(
1389     NamedPropertyGetterCallback getter,
1390     NamedPropertySetterCallback setter,
1391     NamedPropertyQueryCallback query,
1392     NamedPropertyDeleterCallback remover,
1393     NamedPropertyEnumeratorCallback enumerator,
1394     Handle<Value> data) {
1395   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1396   ENTER_V8(isolate);
1397   i::HandleScope scope(isolate);
1398   EnsureConstructor(isolate, this);
1399   i::FunctionTemplateInfo* constructor = i::FunctionTemplateInfo::cast(
1400       Utils::OpenHandle(this)->constructor());
1401   i::Handle<i::FunctionTemplateInfo> cons(constructor);
1402   i::Handle<i::Struct> struct_obj =
1403       isolate->factory()->NewStruct(i::INTERCEPTOR_INFO_TYPE);
1404   i::Handle<i::InterceptorInfo> obj =
1405       i::Handle<i::InterceptorInfo>::cast(struct_obj);
1406 
1407   if (getter != 0) SET_FIELD_WRAPPED(obj, set_getter, getter);
1408   if (setter != 0) SET_FIELD_WRAPPED(obj, set_setter, setter);
1409   if (query != 0) SET_FIELD_WRAPPED(obj, set_query, query);
1410   if (remover != 0) SET_FIELD_WRAPPED(obj, set_deleter, remover);
1411   if (enumerator != 0) SET_FIELD_WRAPPED(obj, set_enumerator, enumerator);
1412 
1413   if (data.IsEmpty()) {
1414     data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
1415   }
1416   obj->set_data(*Utils::OpenHandle(*data));
1417   cons->set_named_property_handler(*obj);
1418 }
1419 
1420 
MarkAsUndetectable()1421 void ObjectTemplate::MarkAsUndetectable() {
1422   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1423   ENTER_V8(isolate);
1424   i::HandleScope scope(isolate);
1425   EnsureConstructor(isolate, this);
1426   i::FunctionTemplateInfo* constructor =
1427       i::FunctionTemplateInfo::cast(Utils::OpenHandle(this)->constructor());
1428   i::Handle<i::FunctionTemplateInfo> cons(constructor);
1429   cons->set_undetectable(true);
1430 }
1431 
1432 
SetAccessCheckCallbacks(NamedSecurityCallback named_callback,IndexedSecurityCallback indexed_callback,Handle<Value> data,bool turned_on_by_default)1433 void ObjectTemplate::SetAccessCheckCallbacks(
1434     NamedSecurityCallback named_callback,
1435     IndexedSecurityCallback indexed_callback,
1436     Handle<Value> data,
1437     bool turned_on_by_default) {
1438   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1439   ENTER_V8(isolate);
1440   i::HandleScope scope(isolate);
1441   EnsureConstructor(isolate, this);
1442 
1443   i::Handle<i::Struct> struct_info =
1444       isolate->factory()->NewStruct(i::ACCESS_CHECK_INFO_TYPE);
1445   i::Handle<i::AccessCheckInfo> info =
1446       i::Handle<i::AccessCheckInfo>::cast(struct_info);
1447 
1448   SET_FIELD_WRAPPED(info, set_named_callback, named_callback);
1449   SET_FIELD_WRAPPED(info, set_indexed_callback, indexed_callback);
1450 
1451   if (data.IsEmpty()) {
1452     data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
1453   }
1454   info->set_data(*Utils::OpenHandle(*data));
1455 
1456   i::FunctionTemplateInfo* constructor =
1457       i::FunctionTemplateInfo::cast(Utils::OpenHandle(this)->constructor());
1458   i::Handle<i::FunctionTemplateInfo> cons(constructor);
1459   cons->set_access_check_info(*info);
1460   cons->set_needs_access_check(turned_on_by_default);
1461 }
1462 
1463 
SetIndexedPropertyHandler(IndexedPropertyGetterCallback getter,IndexedPropertySetterCallback setter,IndexedPropertyQueryCallback query,IndexedPropertyDeleterCallback remover,IndexedPropertyEnumeratorCallback enumerator,Handle<Value> data)1464 void ObjectTemplate::SetIndexedPropertyHandler(
1465     IndexedPropertyGetterCallback getter,
1466     IndexedPropertySetterCallback setter,
1467     IndexedPropertyQueryCallback query,
1468     IndexedPropertyDeleterCallback remover,
1469     IndexedPropertyEnumeratorCallback enumerator,
1470     Handle<Value> data) {
1471   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1472   ENTER_V8(isolate);
1473   i::HandleScope scope(isolate);
1474   EnsureConstructor(isolate, this);
1475   i::FunctionTemplateInfo* constructor = i::FunctionTemplateInfo::cast(
1476       Utils::OpenHandle(this)->constructor());
1477   i::Handle<i::FunctionTemplateInfo> cons(constructor);
1478   i::Handle<i::Struct> struct_obj =
1479       isolate->factory()->NewStruct(i::INTERCEPTOR_INFO_TYPE);
1480   i::Handle<i::InterceptorInfo> obj =
1481       i::Handle<i::InterceptorInfo>::cast(struct_obj);
1482 
1483   if (getter != 0) SET_FIELD_WRAPPED(obj, set_getter, getter);
1484   if (setter != 0) SET_FIELD_WRAPPED(obj, set_setter, setter);
1485   if (query != 0) SET_FIELD_WRAPPED(obj, set_query, query);
1486   if (remover != 0) SET_FIELD_WRAPPED(obj, set_deleter, remover);
1487   if (enumerator != 0) SET_FIELD_WRAPPED(obj, set_enumerator, enumerator);
1488 
1489   if (data.IsEmpty()) {
1490     data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
1491   }
1492   obj->set_data(*Utils::OpenHandle(*data));
1493   cons->set_indexed_property_handler(*obj);
1494 }
1495 
1496 
SetCallAsFunctionHandler(FunctionCallback callback,Handle<Value> data)1497 void ObjectTemplate::SetCallAsFunctionHandler(FunctionCallback callback,
1498                                               Handle<Value> data) {
1499   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1500   ENTER_V8(isolate);
1501   i::HandleScope scope(isolate);
1502   EnsureConstructor(isolate, this);
1503   i::FunctionTemplateInfo* constructor = i::FunctionTemplateInfo::cast(
1504       Utils::OpenHandle(this)->constructor());
1505   i::Handle<i::FunctionTemplateInfo> cons(constructor);
1506   i::Handle<i::Struct> struct_obj =
1507       isolate->factory()->NewStruct(i::CALL_HANDLER_INFO_TYPE);
1508   i::Handle<i::CallHandlerInfo> obj =
1509       i::Handle<i::CallHandlerInfo>::cast(struct_obj);
1510   SET_FIELD_WRAPPED(obj, set_callback, callback);
1511   if (data.IsEmpty()) {
1512     data = v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
1513   }
1514   obj->set_data(*Utils::OpenHandle(*data));
1515   cons->set_instance_call_handler(*obj);
1516 }
1517 
1518 
InternalFieldCount()1519 int ObjectTemplate::InternalFieldCount() {
1520   return i::Smi::cast(Utils::OpenHandle(this)->internal_field_count())->value();
1521 }
1522 
1523 
SetInternalFieldCount(int value)1524 void ObjectTemplate::SetInternalFieldCount(int value) {
1525   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1526   if (!Utils::ApiCheck(i::Smi::IsValid(value),
1527                        "v8::ObjectTemplate::SetInternalFieldCount()",
1528                        "Invalid internal field count")) {
1529     return;
1530   }
1531   ENTER_V8(isolate);
1532   if (value > 0) {
1533     // The internal field count is set by the constructor function's
1534     // construct code, so we ensure that there is a constructor
1535     // function to do the setting.
1536     EnsureConstructor(isolate, this);
1537   }
1538   Utils::OpenHandle(this)->set_internal_field_count(i::Smi::FromInt(value));
1539 }
1540 
1541 
1542 // --- S c r i p t s ---
1543 
1544 
1545 // Internally, UnboundScript is a SharedFunctionInfo, and Script is a
1546 // JSFunction.
1547 
CachedData(const uint8_t * data_,int length_,BufferPolicy buffer_policy_)1548 ScriptCompiler::CachedData::CachedData(const uint8_t* data_, int length_,
1549                                        BufferPolicy buffer_policy_)
1550     : data(data_), length(length_), buffer_policy(buffer_policy_) {}
1551 
1552 
~CachedData()1553 ScriptCompiler::CachedData::~CachedData() {
1554   if (buffer_policy == BufferOwned) {
1555     delete[] data;
1556   }
1557 }
1558 
1559 
BindToCurrentContext()1560 Local<Script> UnboundScript::BindToCurrentContext() {
1561   i::Handle<i::HeapObject> obj =
1562       i::Handle<i::HeapObject>::cast(Utils::OpenHandle(this));
1563   i::Handle<i::SharedFunctionInfo>
1564       function_info(i::SharedFunctionInfo::cast(*obj), obj->GetIsolate());
1565   i::Handle<i::JSFunction> function =
1566       obj->GetIsolate()->factory()->NewFunctionFromSharedFunctionInfo(
1567           function_info, obj->GetIsolate()->global_context());
1568   return ToApiHandle<Script>(function);
1569 }
1570 
1571 
GetId()1572 int UnboundScript::GetId() {
1573   i::Handle<i::HeapObject> obj =
1574       i::Handle<i::HeapObject>::cast(Utils::OpenHandle(this));
1575   i::Isolate* isolate = obj->GetIsolate();
1576   ON_BAILOUT(isolate, "v8::UnboundScript::GetId()", return -1);
1577   LOG_API(isolate, "v8::UnboundScript::GetId");
1578   {
1579     i::HandleScope scope(isolate);
1580     i::Handle<i::SharedFunctionInfo> function_info(
1581         i::SharedFunctionInfo::cast(*obj));
1582     i::Handle<i::Script> script(i::Script::cast(function_info->script()));
1583     return script->id()->value();
1584   }
1585 }
1586 
1587 
GetLineNumber(int code_pos)1588 int UnboundScript::GetLineNumber(int code_pos) {
1589   i::Handle<i::SharedFunctionInfo> obj =
1590       i::Handle<i::SharedFunctionInfo>::cast(Utils::OpenHandle(this));
1591   i::Isolate* isolate = obj->GetIsolate();
1592   ON_BAILOUT(isolate, "v8::UnboundScript::GetLineNumber()", return -1);
1593   LOG_API(isolate, "UnboundScript::GetLineNumber");
1594   if (obj->script()->IsScript()) {
1595     i::Handle<i::Script> script(i::Script::cast(obj->script()));
1596     return i::Script::GetLineNumber(script, code_pos);
1597   } else {
1598     return -1;
1599   }
1600 }
1601 
1602 
GetScriptName()1603 Handle<Value> UnboundScript::GetScriptName() {
1604   i::Handle<i::SharedFunctionInfo> obj =
1605       i::Handle<i::SharedFunctionInfo>::cast(Utils::OpenHandle(this));
1606   i::Isolate* isolate = obj->GetIsolate();
1607   ON_BAILOUT(isolate, "v8::UnboundScript::GetName()",
1608              return Handle<String>());
1609   LOG_API(isolate, "UnboundScript::GetName");
1610   if (obj->script()->IsScript()) {
1611     i::Object* name = i::Script::cast(obj->script())->name();
1612     return Utils::ToLocal(i::Handle<i::Object>(name, isolate));
1613   } else {
1614     return Handle<String>();
1615   }
1616 }
1617 
1618 
Run()1619 Local<Value> Script::Run() {
1620   i::Handle<i::Object> obj = Utils::OpenHandle(this, true);
1621   // If execution is terminating, Compile(..)->Run() requires this
1622   // check.
1623   if (obj.is_null()) return Local<Value>();
1624   i::Isolate* isolate = i::Handle<i::HeapObject>::cast(obj)->GetIsolate();
1625   ON_BAILOUT(isolate, "v8::Script::Run()", return Local<Value>());
1626   LOG_API(isolate, "Script::Run");
1627   ENTER_V8(isolate);
1628   i::Logger::TimerEventScope timer_scope(
1629       isolate, i::Logger::TimerEventScope::v8_execute);
1630   i::HandleScope scope(isolate);
1631   i::Handle<i::JSFunction> fun = i::Handle<i::JSFunction>::cast(obj);
1632   EXCEPTION_PREAMBLE(isolate);
1633   i::Handle<i::Object> receiver(
1634       isolate->context()->global_proxy(), isolate);
1635   i::Handle<i::Object> result;
1636   has_pending_exception = !i::Execution::Call(
1637       isolate, fun, receiver, 0, NULL).ToHandle(&result);
1638   EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, Local<Value>());
1639   return Utils::ToLocal(scope.CloseAndEscape(result));
1640 }
1641 
1642 
GetUnboundScript()1643 Local<UnboundScript> Script::GetUnboundScript() {
1644   i::Handle<i::Object> obj = Utils::OpenHandle(this);
1645   return ToApiHandle<UnboundScript>(
1646       i::Handle<i::SharedFunctionInfo>(i::JSFunction::cast(*obj)->shared()));
1647 }
1648 
1649 
CompileUnbound(Isolate * v8_isolate,Source * source,CompileOptions options)1650 Local<UnboundScript> ScriptCompiler::CompileUnbound(
1651     Isolate* v8_isolate,
1652     Source* source,
1653     CompileOptions options) {
1654   i::ScriptData* script_data_impl = NULL;
1655   i::CachedDataMode cached_data_mode = i::NO_CACHED_DATA;
1656   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
1657   ON_BAILOUT(isolate, "v8::ScriptCompiler::CompileUnbound()",
1658              return Local<UnboundScript>());
1659   if (options & kProduceDataToCache) {
1660     cached_data_mode = i::PRODUCE_CACHED_DATA;
1661     ASSERT(source->cached_data == NULL);
1662     if (source->cached_data) {
1663       // Asked to produce cached data even though there is some already -> not
1664       // good. Fail the compilation.
1665       EXCEPTION_PREAMBLE(isolate);
1666       i::Handle<i::Object> result = isolate->factory()->NewSyntaxError(
1667           "invalid_cached_data", isolate->factory()->NewJSArray(0));
1668       isolate->Throw(*result);
1669       isolate->ReportPendingMessages();
1670       has_pending_exception = true;
1671       EXCEPTION_BAILOUT_CHECK(isolate, Local<UnboundScript>());
1672     }
1673   } else if (source->cached_data) {
1674     cached_data_mode = i::CONSUME_CACHED_DATA;
1675     // ScriptData takes care of aligning, in case the data is not aligned
1676     // correctly.
1677     script_data_impl = i::ScriptData::New(
1678         reinterpret_cast<const char*>(source->cached_data->data),
1679         source->cached_data->length);
1680     // If the cached data is not valid, fail the compilation.
1681     if (script_data_impl == NULL || !script_data_impl->SanityCheck()) {
1682       EXCEPTION_PREAMBLE(isolate);
1683       i::Handle<i::Object> result = isolate->factory()->NewSyntaxError(
1684           "invalid_cached_data", isolate->factory()->NewJSArray(0));
1685       isolate->Throw(*result);
1686       isolate->ReportPendingMessages();
1687       delete script_data_impl;
1688       has_pending_exception = true;
1689       EXCEPTION_BAILOUT_CHECK(isolate, Local<UnboundScript>());
1690     }
1691   }
1692 
1693   i::Handle<i::String> str = Utils::OpenHandle(*(source->source_string));
1694   LOG_API(isolate, "ScriptCompiler::CompileUnbound");
1695   ENTER_V8(isolate);
1696   i::SharedFunctionInfo* raw_result = NULL;
1697   { i::HandleScope scope(isolate);
1698     i::Handle<i::Object> name_obj;
1699     int line_offset = 0;
1700     int column_offset = 0;
1701     bool is_shared_cross_origin = false;
1702     if (!source->resource_name.IsEmpty()) {
1703       name_obj = Utils::OpenHandle(*(source->resource_name));
1704     }
1705     if (!source->resource_line_offset.IsEmpty()) {
1706       line_offset = static_cast<int>(source->resource_line_offset->Value());
1707     }
1708     if (!source->resource_column_offset.IsEmpty()) {
1709       column_offset =
1710           static_cast<int>(source->resource_column_offset->Value());
1711     }
1712     if (!source->resource_is_shared_cross_origin.IsEmpty()) {
1713       v8::Isolate* v8_isolate = reinterpret_cast<v8::Isolate*>(isolate);
1714       is_shared_cross_origin =
1715           source->resource_is_shared_cross_origin == v8::True(v8_isolate);
1716     }
1717     EXCEPTION_PREAMBLE(isolate);
1718     i::Handle<i::SharedFunctionInfo> result =
1719         i::Compiler::CompileScript(str,
1720                                    name_obj,
1721                                    line_offset,
1722                                    column_offset,
1723                                    is_shared_cross_origin,
1724                                    isolate->global_context(),
1725                                    NULL,
1726                                    &script_data_impl,
1727                                    cached_data_mode,
1728                                    i::NOT_NATIVES_CODE);
1729     has_pending_exception = result.is_null();
1730     if (has_pending_exception && cached_data_mode == i::CONSUME_CACHED_DATA) {
1731       // This case won't happen during normal operation; we have compiled
1732       // successfully and produced cached data, and but the second compilation
1733       // of the same source code fails.
1734       delete script_data_impl;
1735       script_data_impl = NULL;
1736     }
1737     EXCEPTION_BAILOUT_CHECK(isolate, Local<UnboundScript>());
1738     raw_result = *result;
1739     if ((options & kProduceDataToCache) && script_data_impl != NULL) {
1740       // script_data_impl now contains the data that was generated. source will
1741       // take the ownership.
1742       source->cached_data = new CachedData(
1743           reinterpret_cast<const uint8_t*>(script_data_impl->Data()),
1744           script_data_impl->Length(), CachedData::BufferOwned);
1745       script_data_impl->owns_store_ = false;
1746     }
1747     delete script_data_impl;
1748   }
1749   i::Handle<i::SharedFunctionInfo> result(raw_result, isolate);
1750   return ToApiHandle<UnboundScript>(result);
1751 }
1752 
1753 
Compile(Isolate * v8_isolate,Source * source,CompileOptions options)1754 Local<Script> ScriptCompiler::Compile(
1755     Isolate* v8_isolate,
1756     Source* source,
1757     CompileOptions options) {
1758   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
1759   ON_BAILOUT(isolate, "v8::ScriptCompiler::Compile()", return Local<Script>());
1760   LOG_API(isolate, "ScriptCompiler::CompiletBound()");
1761   ENTER_V8(isolate);
1762   Local<UnboundScript> generic = CompileUnbound(v8_isolate, source, options);
1763   if (generic.IsEmpty()) return Local<Script>();
1764   return generic->BindToCurrentContext();
1765 }
1766 
1767 
Compile(v8::Handle<String> source,v8::ScriptOrigin * origin)1768 Local<Script> Script::Compile(v8::Handle<String> source,
1769                               v8::ScriptOrigin* origin) {
1770   i::Handle<i::String> str = Utils::OpenHandle(*source);
1771   if (origin) {
1772     ScriptCompiler::Source script_source(source, *origin);
1773     return ScriptCompiler::Compile(
1774         reinterpret_cast<v8::Isolate*>(str->GetIsolate()),
1775         &script_source);
1776   }
1777   ScriptCompiler::Source script_source(source);
1778   return ScriptCompiler::Compile(
1779       reinterpret_cast<v8::Isolate*>(str->GetIsolate()),
1780       &script_source);
1781 }
1782 
1783 
Compile(v8::Handle<String> source,v8::Handle<String> file_name)1784 Local<Script> Script::Compile(v8::Handle<String> source,
1785                               v8::Handle<String> file_name) {
1786   ScriptOrigin origin(file_name);
1787   return Compile(source, &origin);
1788 }
1789 
1790 
1791 // --- E x c e p t i o n s ---
1792 
1793 
TryCatch()1794 v8::TryCatch::TryCatch()
1795     : isolate_(i::Isolate::Current()),
1796       next_(isolate_->try_catch_handler()),
1797       is_verbose_(false),
1798       can_continue_(true),
1799       capture_message_(true),
1800       rethrow_(false),
1801       has_terminated_(false) {
1802   Reset();
1803   js_stack_comparable_address_ = this;
1804 #ifdef V8_USE_ADDRESS_SANITIZER
1805   void* asan_fake_stack_handle = __asan_get_current_fake_stack();
1806   if (asan_fake_stack_handle != NULL) {
1807     js_stack_comparable_address_ = __asan_addr_is_in_fake_stack(
1808         asan_fake_stack_handle, js_stack_comparable_address_, NULL, NULL);
1809     CHECK(js_stack_comparable_address_ != NULL);
1810   }
1811 #endif
1812   // Special handling for simulators which have a separate JS stack.
1813   js_stack_comparable_address_ = reinterpret_cast<void*>(
1814       v8::internal::SimulatorStack::RegisterCTryCatch(
1815           reinterpret_cast<uintptr_t>(js_stack_comparable_address_)));
1816   isolate_->RegisterTryCatchHandler(this);
1817 }
1818 
1819 
~TryCatch()1820 v8::TryCatch::~TryCatch() {
1821   ASSERT(isolate_ == i::Isolate::Current());
1822   if (rethrow_) {
1823     v8::Isolate* isolate = reinterpret_cast<Isolate*>(isolate_);
1824     v8::HandleScope scope(isolate);
1825     v8::Local<v8::Value> exc = v8::Local<v8::Value>::New(isolate, Exception());
1826     if (HasCaught() && capture_message_) {
1827       // If an exception was caught and rethrow_ is indicated, the saved
1828       // message, script, and location need to be restored to Isolate TLS
1829       // for reuse.  capture_message_ needs to be disabled so that DoThrow()
1830       // does not create a new message.
1831       isolate_->thread_local_top()->rethrowing_message_ = true;
1832       isolate_->RestorePendingMessageFromTryCatch(this);
1833     }
1834     isolate_->UnregisterTryCatchHandler(this);
1835     v8::internal::SimulatorStack::UnregisterCTryCatch();
1836     reinterpret_cast<Isolate*>(isolate_)->ThrowException(exc);
1837     ASSERT(!isolate_->thread_local_top()->rethrowing_message_);
1838   } else {
1839     isolate_->UnregisterTryCatchHandler(this);
1840     v8::internal::SimulatorStack::UnregisterCTryCatch();
1841   }
1842 }
1843 
1844 
HasCaught() const1845 bool v8::TryCatch::HasCaught() const {
1846   return !reinterpret_cast<i::Object*>(exception_)->IsTheHole();
1847 }
1848 
1849 
CanContinue() const1850 bool v8::TryCatch::CanContinue() const {
1851   return can_continue_;
1852 }
1853 
1854 
HasTerminated() const1855 bool v8::TryCatch::HasTerminated() const {
1856   return has_terminated_;
1857 }
1858 
1859 
ReThrow()1860 v8::Handle<v8::Value> v8::TryCatch::ReThrow() {
1861   if (!HasCaught()) return v8::Local<v8::Value>();
1862   rethrow_ = true;
1863   return v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate_));
1864 }
1865 
1866 
Exception() const1867 v8::Local<Value> v8::TryCatch::Exception() const {
1868   ASSERT(isolate_ == i::Isolate::Current());
1869   if (HasCaught()) {
1870     // Check for out of memory exception.
1871     i::Object* exception = reinterpret_cast<i::Object*>(exception_);
1872     return v8::Utils::ToLocal(i::Handle<i::Object>(exception, isolate_));
1873   } else {
1874     return v8::Local<Value>();
1875   }
1876 }
1877 
1878 
StackTrace() const1879 v8::Local<Value> v8::TryCatch::StackTrace() const {
1880   ASSERT(isolate_ == i::Isolate::Current());
1881   if (HasCaught()) {
1882     i::Object* raw_obj = reinterpret_cast<i::Object*>(exception_);
1883     if (!raw_obj->IsJSObject()) return v8::Local<Value>();
1884     i::HandleScope scope(isolate_);
1885     i::Handle<i::JSObject> obj(i::JSObject::cast(raw_obj), isolate_);
1886     i::Handle<i::String> name = isolate_->factory()->stack_string();
1887     if (!i::JSReceiver::HasProperty(obj, name)) return v8::Local<Value>();
1888     i::Handle<i::Object> value;
1889     if (!i::Object::GetProperty(obj, name).ToHandle(&value)) {
1890       return v8::Local<Value>();
1891     }
1892     return v8::Utils::ToLocal(scope.CloseAndEscape(value));
1893   } else {
1894     return v8::Local<Value>();
1895   }
1896 }
1897 
1898 
Message() const1899 v8::Local<v8::Message> v8::TryCatch::Message() const {
1900   ASSERT(isolate_ == i::Isolate::Current());
1901   i::Object* message = reinterpret_cast<i::Object*>(message_obj_);
1902   ASSERT(message->IsJSMessageObject() || message->IsTheHole());
1903   if (HasCaught() && !message->IsTheHole()) {
1904     return v8::Utils::MessageToLocal(i::Handle<i::Object>(message, isolate_));
1905   } else {
1906     return v8::Local<v8::Message>();
1907   }
1908 }
1909 
1910 
Reset()1911 void v8::TryCatch::Reset() {
1912   ASSERT(isolate_ == i::Isolate::Current());
1913   i::Object* the_hole = isolate_->heap()->the_hole_value();
1914   exception_ = the_hole;
1915   message_obj_ = the_hole;
1916   message_script_ = the_hole;
1917   message_start_pos_ = 0;
1918   message_end_pos_ = 0;
1919 }
1920 
1921 
SetVerbose(bool value)1922 void v8::TryCatch::SetVerbose(bool value) {
1923   is_verbose_ = value;
1924 }
1925 
1926 
SetCaptureMessage(bool value)1927 void v8::TryCatch::SetCaptureMessage(bool value) {
1928   capture_message_ = value;
1929 }
1930 
1931 
1932 // --- M e s s a g e ---
1933 
1934 
Get() const1935 Local<String> Message::Get() const {
1936   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1937   ON_BAILOUT(isolate, "v8::Message::Get()", return Local<String>());
1938   ENTER_V8(isolate);
1939   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
1940   i::Handle<i::Object> obj = Utils::OpenHandle(this);
1941   i::Handle<i::String> raw_result = i::MessageHandler::GetMessage(isolate, obj);
1942   Local<String> result = Utils::ToLocal(raw_result);
1943   return scope.Escape(result);
1944 }
1945 
1946 
GetScriptResourceName() const1947 v8::Handle<Value> Message::GetScriptResourceName() const {
1948   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1949   ENTER_V8(isolate);
1950   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
1951   i::Handle<i::JSMessageObject> message =
1952       i::Handle<i::JSMessageObject>::cast(Utils::OpenHandle(this));
1953   // Return this.script.name.
1954   i::Handle<i::JSValue> script =
1955       i::Handle<i::JSValue>::cast(i::Handle<i::Object>(message->script(),
1956                                                        isolate));
1957   i::Handle<i::Object> resource_name(i::Script::cast(script->value())->name(),
1958                                      isolate);
1959   return scope.Escape(Utils::ToLocal(resource_name));
1960 }
1961 
1962 
GetStackTrace() const1963 v8::Handle<v8::StackTrace> Message::GetStackTrace() const {
1964   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
1965   ENTER_V8(isolate);
1966   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
1967   i::Handle<i::JSMessageObject> message =
1968       i::Handle<i::JSMessageObject>::cast(Utils::OpenHandle(this));
1969   i::Handle<i::Object> stackFramesObj(message->stack_frames(), isolate);
1970   if (!stackFramesObj->IsJSArray()) return v8::Handle<v8::StackTrace>();
1971   i::Handle<i::JSArray> stackTrace =
1972       i::Handle<i::JSArray>::cast(stackFramesObj);
1973   return scope.Escape(Utils::StackTraceToLocal(stackTrace));
1974 }
1975 
1976 
CallV8HeapFunction(const char * name,i::Handle<i::Object> recv,int argc,i::Handle<i::Object> argv[])1977 MUST_USE_RESULT static i::MaybeHandle<i::Object> CallV8HeapFunction(
1978     const char* name,
1979     i::Handle<i::Object> recv,
1980     int argc,
1981     i::Handle<i::Object> argv[]) {
1982   i::Isolate* isolate = i::Isolate::Current();
1983   i::Handle<i::Object> object_fun =
1984       i::Object::GetProperty(
1985           isolate, isolate->js_builtins_object(), name).ToHandleChecked();
1986   i::Handle<i::JSFunction> fun = i::Handle<i::JSFunction>::cast(object_fun);
1987   return i::Execution::Call(isolate, fun, recv, argc, argv);
1988 }
1989 
1990 
CallV8HeapFunction(const char * name,i::Handle<i::Object> data)1991 MUST_USE_RESULT static i::MaybeHandle<i::Object> CallV8HeapFunction(
1992     const char* name,
1993     i::Handle<i::Object> data) {
1994   i::Handle<i::Object> argv[] = { data };
1995   return CallV8HeapFunction(name,
1996                             i::Isolate::Current()->js_builtins_object(),
1997                             ARRAY_SIZE(argv),
1998                             argv);
1999 }
2000 
2001 
GetLineNumber() const2002 int Message::GetLineNumber() const {
2003   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2004   ON_BAILOUT(isolate, "v8::Message::GetLineNumber()", return kNoLineNumberInfo);
2005   ENTER_V8(isolate);
2006   i::HandleScope scope(isolate);
2007 
2008   EXCEPTION_PREAMBLE(isolate);
2009   i::Handle<i::Object> result;
2010   has_pending_exception = !CallV8HeapFunction(
2011       "GetLineNumber", Utils::OpenHandle(this)).ToHandle(&result);
2012   EXCEPTION_BAILOUT_CHECK(isolate, 0);
2013   return static_cast<int>(result->Number());
2014 }
2015 
2016 
GetStartPosition() const2017 int Message::GetStartPosition() const {
2018   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2019   ENTER_V8(isolate);
2020   i::HandleScope scope(isolate);
2021   i::Handle<i::JSMessageObject> message =
2022       i::Handle<i::JSMessageObject>::cast(Utils::OpenHandle(this));
2023   return message->start_position();
2024 }
2025 
2026 
GetEndPosition() const2027 int Message::GetEndPosition() const {
2028   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2029   ENTER_V8(isolate);
2030   i::HandleScope scope(isolate);
2031   i::Handle<i::JSMessageObject> message =
2032       i::Handle<i::JSMessageObject>::cast(Utils::OpenHandle(this));
2033   return message->end_position();
2034 }
2035 
2036 
GetStartColumn() const2037 int Message::GetStartColumn() const {
2038   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2039   ENTER_V8(isolate);
2040   i::HandleScope scope(isolate);
2041   i::Handle<i::JSObject> data_obj = Utils::OpenHandle(this);
2042   EXCEPTION_PREAMBLE(isolate);
2043   i::Handle<i::Object> start_col_obj;
2044   has_pending_exception = !CallV8HeapFunction(
2045       "GetPositionInLine", data_obj).ToHandle(&start_col_obj);
2046   EXCEPTION_BAILOUT_CHECK(isolate, 0);
2047   return static_cast<int>(start_col_obj->Number());
2048 }
2049 
2050 
GetEndColumn() const2051 int Message::GetEndColumn() const {
2052   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2053   ENTER_V8(isolate);
2054   i::HandleScope scope(isolate);
2055   i::Handle<i::JSObject> data_obj = Utils::OpenHandle(this);
2056   EXCEPTION_PREAMBLE(isolate);
2057   i::Handle<i::Object> start_col_obj;
2058   has_pending_exception = !CallV8HeapFunction(
2059       "GetPositionInLine", data_obj).ToHandle(&start_col_obj);
2060   EXCEPTION_BAILOUT_CHECK(isolate, 0);
2061   i::Handle<i::JSMessageObject> message =
2062       i::Handle<i::JSMessageObject>::cast(data_obj);
2063   int start = message->start_position();
2064   int end = message->end_position();
2065   return static_cast<int>(start_col_obj->Number()) + (end - start);
2066 }
2067 
2068 
IsSharedCrossOrigin() const2069 bool Message::IsSharedCrossOrigin() const {
2070   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2071   ENTER_V8(isolate);
2072   i::HandleScope scope(isolate);
2073   i::Handle<i::JSMessageObject> message =
2074       i::Handle<i::JSMessageObject>::cast(Utils::OpenHandle(this));
2075   i::Handle<i::JSValue> script =
2076       i::Handle<i::JSValue>::cast(i::Handle<i::Object>(message->script(),
2077                                                        isolate));
2078   return i::Script::cast(script->value())->is_shared_cross_origin();
2079 }
2080 
2081 
GetSourceLine() const2082 Local<String> Message::GetSourceLine() const {
2083   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2084   ON_BAILOUT(isolate, "v8::Message::GetSourceLine()", return Local<String>());
2085   ENTER_V8(isolate);
2086   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
2087   EXCEPTION_PREAMBLE(isolate);
2088   i::Handle<i::Object> result;
2089   has_pending_exception = !CallV8HeapFunction(
2090       "GetSourceLine", Utils::OpenHandle(this)).ToHandle(&result);
2091   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::String>());
2092   if (result->IsString()) {
2093     return scope.Escape(Utils::ToLocal(i::Handle<i::String>::cast(result)));
2094   } else {
2095     return Local<String>();
2096   }
2097 }
2098 
2099 
PrintCurrentStackTrace(Isolate * isolate,FILE * out)2100 void Message::PrintCurrentStackTrace(Isolate* isolate, FILE* out) {
2101   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
2102   ENTER_V8(i_isolate);
2103   i_isolate->PrintCurrentStackTrace(out);
2104 }
2105 
2106 
2107 // --- S t a c k T r a c e ---
2108 
GetFrame(uint32_t index) const2109 Local<StackFrame> StackTrace::GetFrame(uint32_t index) const {
2110   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2111   ENTER_V8(isolate);
2112   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
2113   i::Handle<i::JSArray> self = Utils::OpenHandle(this);
2114   i::Handle<i::Object> obj =
2115       i::Object::GetElement(isolate, self, index).ToHandleChecked();
2116   i::Handle<i::JSObject> jsobj = i::Handle<i::JSObject>::cast(obj);
2117   return scope.Escape(Utils::StackFrameToLocal(jsobj));
2118 }
2119 
2120 
GetFrameCount() const2121 int StackTrace::GetFrameCount() const {
2122   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2123   ENTER_V8(isolate);
2124   return i::Smi::cast(Utils::OpenHandle(this)->length())->value();
2125 }
2126 
2127 
AsArray()2128 Local<Array> StackTrace::AsArray() {
2129   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2130   ENTER_V8(isolate);
2131   return Utils::ToLocal(Utils::OpenHandle(this));
2132 }
2133 
2134 
CurrentStackTrace(Isolate * isolate,int frame_limit,StackTraceOptions options)2135 Local<StackTrace> StackTrace::CurrentStackTrace(
2136     Isolate* isolate,
2137     int frame_limit,
2138     StackTraceOptions options) {
2139   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
2140   ENTER_V8(i_isolate);
2141   // TODO(dcarney): remove when ScriptDebugServer is fixed.
2142   options = static_cast<StackTraceOptions>(
2143       static_cast<int>(options) | kExposeFramesAcrossSecurityOrigins);
2144   i::Handle<i::JSArray> stackTrace =
2145       i_isolate->CaptureCurrentStackTrace(frame_limit, options);
2146   return Utils::StackTraceToLocal(stackTrace);
2147 }
2148 
2149 
2150 // --- S t a c k F r a m e ---
2151 
GetLineNumber() const2152 int StackFrame::GetLineNumber() const {
2153   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2154   ENTER_V8(isolate);
2155   i::HandleScope scope(isolate);
2156   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2157   i::Handle<i::Object> line = i::Object::GetProperty(
2158       isolate, self, "lineNumber").ToHandleChecked();
2159   if (!line->IsSmi()) {
2160     return Message::kNoLineNumberInfo;
2161   }
2162   return i::Smi::cast(*line)->value();
2163 }
2164 
2165 
GetColumn() const2166 int StackFrame::GetColumn() const {
2167   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2168   ENTER_V8(isolate);
2169   i::HandleScope scope(isolate);
2170   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2171   i::Handle<i::Object> column = i::Object::GetProperty(
2172       isolate, self, "column").ToHandleChecked();
2173   if (!column->IsSmi()) {
2174     return Message::kNoColumnInfo;
2175   }
2176   return i::Smi::cast(*column)->value();
2177 }
2178 
2179 
GetScriptId() const2180 int StackFrame::GetScriptId() const {
2181   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2182   ENTER_V8(isolate);
2183   i::HandleScope scope(isolate);
2184   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2185   i::Handle<i::Object> scriptId = i::Object::GetProperty(
2186       isolate, self, "scriptId").ToHandleChecked();
2187   if (!scriptId->IsSmi()) {
2188     return Message::kNoScriptIdInfo;
2189   }
2190   return i::Smi::cast(*scriptId)->value();
2191 }
2192 
2193 
GetScriptName() const2194 Local<String> StackFrame::GetScriptName() const {
2195   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2196   ENTER_V8(isolate);
2197   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
2198   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2199   i::Handle<i::Object> name = i::Object::GetProperty(
2200       isolate, self, "scriptName").ToHandleChecked();
2201   if (!name->IsString()) {
2202     return Local<String>();
2203   }
2204   return scope.Escape(Local<String>::Cast(Utils::ToLocal(name)));
2205 }
2206 
2207 
GetScriptNameOrSourceURL() const2208 Local<String> StackFrame::GetScriptNameOrSourceURL() const {
2209   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2210   ENTER_V8(isolate);
2211   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
2212   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2213   i::Handle<i::Object> name = i::Object::GetProperty(
2214       isolate, self, "scriptNameOrSourceURL").ToHandleChecked();
2215   if (!name->IsString()) {
2216     return Local<String>();
2217   }
2218   return scope.Escape(Local<String>::Cast(Utils::ToLocal(name)));
2219 }
2220 
2221 
GetFunctionName() const2222 Local<String> StackFrame::GetFunctionName() const {
2223   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2224   ENTER_V8(isolate);
2225   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
2226   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2227   i::Handle<i::Object> name = i::Object::GetProperty(
2228       isolate, self, "functionName").ToHandleChecked();
2229   if (!name->IsString()) {
2230     return Local<String>();
2231   }
2232   return scope.Escape(Local<String>::Cast(Utils::ToLocal(name)));
2233 }
2234 
2235 
IsEval() const2236 bool StackFrame::IsEval() const {
2237   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2238   ENTER_V8(isolate);
2239   i::HandleScope scope(isolate);
2240   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2241   i::Handle<i::Object> is_eval = i::Object::GetProperty(
2242       isolate, self, "isEval").ToHandleChecked();
2243   return is_eval->IsTrue();
2244 }
2245 
2246 
IsConstructor() const2247 bool StackFrame::IsConstructor() const {
2248   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
2249   ENTER_V8(isolate);
2250   i::HandleScope scope(isolate);
2251   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
2252   i::Handle<i::Object> is_constructor = i::Object::GetProperty(
2253       isolate, self, "isConstructor").ToHandleChecked();
2254   return is_constructor->IsTrue();
2255 }
2256 
2257 
2258 // --- J S O N ---
2259 
Parse(Local<String> json_string)2260 Local<Value> JSON::Parse(Local<String> json_string) {
2261   i::Handle<i::String> string = Utils::OpenHandle(*json_string);
2262   i::Isolate* isolate = string->GetIsolate();
2263   EnsureInitializedForIsolate(isolate, "v8::JSON::Parse");
2264   ENTER_V8(isolate);
2265   i::HandleScope scope(isolate);
2266   i::Handle<i::String> source = i::String::Flatten(string);
2267   EXCEPTION_PREAMBLE(isolate);
2268   i::MaybeHandle<i::Object> maybe_result =
2269       source->IsSeqOneByteString() ? i::JsonParser<true>::Parse(source)
2270                                    : i::JsonParser<false>::Parse(source);
2271   i::Handle<i::Object> result;
2272   has_pending_exception = !maybe_result.ToHandle(&result);
2273   EXCEPTION_BAILOUT_CHECK(isolate, Local<Object>());
2274   return Utils::ToLocal(
2275       i::Handle<i::Object>::cast(scope.CloseAndEscape(result)));
2276 }
2277 
2278 
2279 // --- D a t a ---
2280 
FullIsUndefined() const2281 bool Value::FullIsUndefined() const {
2282   bool result = Utils::OpenHandle(this)->IsUndefined();
2283   ASSERT_EQ(result, QuickIsUndefined());
2284   return result;
2285 }
2286 
2287 
FullIsNull() const2288 bool Value::FullIsNull() const {
2289   bool result = Utils::OpenHandle(this)->IsNull();
2290   ASSERT_EQ(result, QuickIsNull());
2291   return result;
2292 }
2293 
2294 
IsTrue() const2295 bool Value::IsTrue() const {
2296   return Utils::OpenHandle(this)->IsTrue();
2297 }
2298 
2299 
IsFalse() const2300 bool Value::IsFalse() const {
2301   return Utils::OpenHandle(this)->IsFalse();
2302 }
2303 
2304 
IsFunction() const2305 bool Value::IsFunction() const {
2306   return Utils::OpenHandle(this)->IsJSFunction();
2307 }
2308 
2309 
FullIsString() const2310 bool Value::FullIsString() const {
2311   bool result = Utils::OpenHandle(this)->IsString();
2312   ASSERT_EQ(result, QuickIsString());
2313   return result;
2314 }
2315 
2316 
IsSymbol() const2317 bool Value::IsSymbol() const {
2318   return Utils::OpenHandle(this)->IsSymbol();
2319 }
2320 
2321 
IsArray() const2322 bool Value::IsArray() const {
2323   return Utils::OpenHandle(this)->IsJSArray();
2324 }
2325 
2326 
IsArrayBuffer() const2327 bool Value::IsArrayBuffer() const {
2328   return Utils::OpenHandle(this)->IsJSArrayBuffer();
2329 }
2330 
2331 
IsArrayBufferView() const2332 bool Value::IsArrayBufferView() const {
2333   return Utils::OpenHandle(this)->IsJSArrayBufferView();
2334 }
2335 
2336 
IsTypedArray() const2337 bool Value::IsTypedArray() const {
2338   return Utils::OpenHandle(this)->IsJSTypedArray();
2339 }
2340 
2341 
2342 #define VALUE_IS_TYPED_ARRAY(Type, typeName, TYPE, ctype, size)            \
2343   bool Value::Is##Type##Array() const {                                    \
2344     i::Handle<i::Object> obj = Utils::OpenHandle(this);                    \
2345     return obj->IsJSTypedArray() &&                                        \
2346            i::JSTypedArray::cast(*obj)->type() == kExternal##Type##Array;  \
2347   }
2348 
TYPED_ARRAYS(VALUE_IS_TYPED_ARRAY)2349 TYPED_ARRAYS(VALUE_IS_TYPED_ARRAY)
2350 
2351 #undef VALUE_IS_TYPED_ARRAY
2352 
2353 
2354 bool Value::IsDataView() const {
2355   return Utils::OpenHandle(this)->IsJSDataView();
2356 }
2357 
2358 
IsObject() const2359 bool Value::IsObject() const {
2360   return Utils::OpenHandle(this)->IsJSObject();
2361 }
2362 
2363 
IsNumber() const2364 bool Value::IsNumber() const {
2365   return Utils::OpenHandle(this)->IsNumber();
2366 }
2367 
2368 
IsBoolean() const2369 bool Value::IsBoolean() const {
2370   return Utils::OpenHandle(this)->IsBoolean();
2371 }
2372 
2373 
IsExternal() const2374 bool Value::IsExternal() const {
2375   return Utils::OpenHandle(this)->IsExternal();
2376 }
2377 
2378 
IsInt32() const2379 bool Value::IsInt32() const {
2380   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2381   if (obj->IsSmi()) return true;
2382   if (obj->IsNumber()) {
2383     return i::IsInt32Double(obj->Number());
2384   }
2385   return false;
2386 }
2387 
2388 
IsUint32() const2389 bool Value::IsUint32() const {
2390   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2391   if (obj->IsSmi()) return i::Smi::cast(*obj)->value() >= 0;
2392   if (obj->IsNumber()) {
2393     double value = obj->Number();
2394     return !i::IsMinusZero(value) &&
2395         value >= 0 &&
2396         value <= i::kMaxUInt32 &&
2397         value == i::FastUI2D(i::FastD2UI(value));
2398   }
2399   return false;
2400 }
2401 
2402 
IsDate() const2403 bool Value::IsDate() const {
2404   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2405   if (!obj->IsHeapObject()) return false;
2406   i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2407   return obj->HasSpecificClassOf(isolate->heap()->Date_string());
2408 }
2409 
2410 
IsStringObject() const2411 bool Value::IsStringObject() const {
2412   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2413   if (!obj->IsHeapObject()) return false;
2414   i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2415   return obj->HasSpecificClassOf(isolate->heap()->String_string());
2416 }
2417 
2418 
IsSymbolObject() const2419 bool Value::IsSymbolObject() const {
2420   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2421   if (!obj->IsHeapObject()) return false;
2422   i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2423   return obj->HasSpecificClassOf(isolate->heap()->Symbol_string());
2424 }
2425 
2426 
IsNumberObject() const2427 bool Value::IsNumberObject() const {
2428   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2429   if (!obj->IsHeapObject()) return false;
2430   i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2431   return obj->HasSpecificClassOf(isolate->heap()->Number_string());
2432 }
2433 
2434 
CheckConstructor(i::Isolate * isolate,i::Handle<i::JSObject> obj,const char * class_name)2435 static bool CheckConstructor(i::Isolate* isolate,
2436                              i::Handle<i::JSObject> obj,
2437                              const char* class_name) {
2438   i::Handle<i::Object> constr(obj->map()->constructor(), isolate);
2439   if (!constr->IsJSFunction()) return false;
2440   i::Handle<i::JSFunction> func = i::Handle<i::JSFunction>::cast(constr);
2441   return func->shared()->native() && constr.is_identical_to(
2442       i::Object::GetProperty(isolate,
2443                              isolate->js_builtins_object(),
2444                              class_name).ToHandleChecked());
2445 }
2446 
2447 
IsNativeError() const2448 bool Value::IsNativeError() const {
2449   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2450   if (obj->IsJSObject()) {
2451     i::Handle<i::JSObject> js_obj(i::JSObject::cast(*obj));
2452     i::Isolate* isolate = js_obj->GetIsolate();
2453     return CheckConstructor(isolate, js_obj, "$Error") ||
2454         CheckConstructor(isolate, js_obj, "$EvalError") ||
2455         CheckConstructor(isolate, js_obj, "$RangeError") ||
2456         CheckConstructor(isolate, js_obj, "$ReferenceError") ||
2457         CheckConstructor(isolate, js_obj, "$SyntaxError") ||
2458         CheckConstructor(isolate, js_obj, "$TypeError") ||
2459         CheckConstructor(isolate, js_obj, "$URIError");
2460   } else {
2461     return false;
2462   }
2463 }
2464 
2465 
IsBooleanObject() const2466 bool Value::IsBooleanObject() const {
2467   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2468   if (!obj->IsHeapObject()) return false;
2469   i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2470   return obj->HasSpecificClassOf(isolate->heap()->Boolean_string());
2471 }
2472 
2473 
IsRegExp() const2474 bool Value::IsRegExp() const {
2475   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2476   return obj->IsJSRegExp();
2477 }
2478 
2479 
ToString() const2480 Local<String> Value::ToString() const {
2481   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2482   i::Handle<i::Object> str;
2483   if (obj->IsString()) {
2484     str = obj;
2485   } else {
2486     i::Isolate* isolate = i::Isolate::Current();
2487     LOG_API(isolate, "ToString");
2488     ENTER_V8(isolate);
2489     EXCEPTION_PREAMBLE(isolate);
2490     has_pending_exception = !i::Execution::ToString(
2491         isolate, obj).ToHandle(&str);
2492     EXCEPTION_BAILOUT_CHECK(isolate, Local<String>());
2493   }
2494   return ToApiHandle<String>(str);
2495 }
2496 
2497 
ToDetailString() const2498 Local<String> Value::ToDetailString() const {
2499   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2500   i::Handle<i::Object> str;
2501   if (obj->IsString()) {
2502     str = obj;
2503   } else {
2504     i::Isolate* isolate = i::Isolate::Current();
2505     LOG_API(isolate, "ToDetailString");
2506     ENTER_V8(isolate);
2507     EXCEPTION_PREAMBLE(isolate);
2508     has_pending_exception = !i::Execution::ToDetailString(
2509         isolate, obj).ToHandle(&str);
2510     EXCEPTION_BAILOUT_CHECK(isolate, Local<String>());
2511   }
2512   return ToApiHandle<String>(str);
2513 }
2514 
2515 
ToObject() const2516 Local<v8::Object> Value::ToObject() const {
2517   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2518   i::Handle<i::Object> val;
2519   if (obj->IsJSObject()) {
2520     val = obj;
2521   } else {
2522     i::Isolate* isolate = i::Isolate::Current();
2523     LOG_API(isolate, "ToObject");
2524     ENTER_V8(isolate);
2525     EXCEPTION_PREAMBLE(isolate);
2526     has_pending_exception = !i::Execution::ToObject(
2527         isolate, obj).ToHandle(&val);
2528     EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::Object>());
2529   }
2530   return ToApiHandle<Object>(val);
2531 }
2532 
2533 
ToBoolean() const2534 Local<Boolean> Value::ToBoolean() const {
2535   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2536   if (obj->IsBoolean()) {
2537     return ToApiHandle<Boolean>(obj);
2538   } else {
2539     i::Isolate* isolate = i::Isolate::Current();
2540     LOG_API(isolate, "ToBoolean");
2541     ENTER_V8(isolate);
2542     i::Handle<i::Object> val =
2543         isolate->factory()->ToBoolean(obj->BooleanValue());
2544     return ToApiHandle<Boolean>(val);
2545   }
2546 }
2547 
2548 
ToNumber() const2549 Local<Number> Value::ToNumber() const {
2550   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2551   i::Handle<i::Object> num;
2552   if (obj->IsNumber()) {
2553     num = obj;
2554   } else {
2555     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2556     LOG_API(isolate, "ToNumber");
2557     ENTER_V8(isolate);
2558     EXCEPTION_PREAMBLE(isolate);
2559     has_pending_exception = !i::Execution::ToNumber(
2560         isolate, obj).ToHandle(&num);
2561     EXCEPTION_BAILOUT_CHECK(isolate, Local<Number>());
2562   }
2563   return ToApiHandle<Number>(num);
2564 }
2565 
2566 
ToInteger() const2567 Local<Integer> Value::ToInteger() const {
2568   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2569   i::Handle<i::Object> num;
2570   if (obj->IsSmi()) {
2571     num = obj;
2572   } else {
2573     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2574     LOG_API(isolate, "ToInteger");
2575     ENTER_V8(isolate);
2576     EXCEPTION_PREAMBLE(isolate);
2577     has_pending_exception = !i::Execution::ToInteger(
2578         isolate, obj).ToHandle(&num);
2579     EXCEPTION_BAILOUT_CHECK(isolate, Local<Integer>());
2580   }
2581   return ToApiHandle<Integer>(num);
2582 }
2583 
2584 
CheckInitializedImpl(v8::Isolate * external_isolate)2585 void i::Internals::CheckInitializedImpl(v8::Isolate* external_isolate) {
2586   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(external_isolate);
2587   Utils::ApiCheck(isolate != NULL &&
2588                   isolate->IsInitialized() &&
2589                   !isolate->IsDead(),
2590                   "v8::internal::Internals::CheckInitialized()",
2591                   "Isolate is not initialized or V8 has died");
2592 }
2593 
2594 
CheckCast(v8::Value * that)2595 void External::CheckCast(v8::Value* that) {
2596   Utils::ApiCheck(Utils::OpenHandle(that)->IsExternal(),
2597                   "v8::External::Cast()",
2598                   "Could not convert to external");
2599 }
2600 
2601 
CheckCast(Value * that)2602 void v8::Object::CheckCast(Value* that) {
2603   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2604   Utils::ApiCheck(obj->IsJSObject(),
2605                   "v8::Object::Cast()",
2606                   "Could not convert to object");
2607 }
2608 
2609 
CheckCast(Value * that)2610 void v8::Function::CheckCast(Value* that) {
2611   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2612   Utils::ApiCheck(obj->IsJSFunction(),
2613                   "v8::Function::Cast()",
2614                   "Could not convert to function");
2615 }
2616 
2617 
CheckCast(v8::Value * that)2618 void v8::String::CheckCast(v8::Value* that) {
2619   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2620   Utils::ApiCheck(obj->IsString(),
2621                   "v8::String::Cast()",
2622                   "Could not convert to string");
2623 }
2624 
2625 
CheckCast(v8::Value * that)2626 void v8::Symbol::CheckCast(v8::Value* that) {
2627   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2628   Utils::ApiCheck(obj->IsSymbol(),
2629                   "v8::Symbol::Cast()",
2630                   "Could not convert to symbol");
2631 }
2632 
2633 
CheckCast(v8::Value * that)2634 void v8::Number::CheckCast(v8::Value* that) {
2635   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2636   Utils::ApiCheck(obj->IsNumber(),
2637                   "v8::Number::Cast()",
2638                   "Could not convert to number");
2639 }
2640 
2641 
CheckCast(v8::Value * that)2642 void v8::Integer::CheckCast(v8::Value* that) {
2643   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2644   Utils::ApiCheck(obj->IsNumber(),
2645                   "v8::Integer::Cast()",
2646                   "Could not convert to number");
2647 }
2648 
2649 
CheckCast(Value * that)2650 void v8::Array::CheckCast(Value* that) {
2651   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2652   Utils::ApiCheck(obj->IsJSArray(),
2653                   "v8::Array::Cast()",
2654                   "Could not convert to array");
2655 }
2656 
2657 
CheckCast(Value * that)2658 void v8::Promise::CheckCast(Value* that) {
2659   Utils::ApiCheck(that->IsPromise(),
2660                   "v8::Promise::Cast()",
2661                   "Could not convert to promise");
2662 }
2663 
2664 
CheckCast(Value * that)2665 void v8::Promise::Resolver::CheckCast(Value* that) {
2666   Utils::ApiCheck(that->IsPromise(),
2667                   "v8::Promise::Resolver::Cast()",
2668                   "Could not convert to promise resolver");
2669 }
2670 
2671 
CheckCast(Value * that)2672 void v8::ArrayBuffer::CheckCast(Value* that) {
2673   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2674   Utils::ApiCheck(obj->IsJSArrayBuffer(),
2675                   "v8::ArrayBuffer::Cast()",
2676                   "Could not convert to ArrayBuffer");
2677 }
2678 
2679 
CheckCast(Value * that)2680 void v8::ArrayBufferView::CheckCast(Value* that) {
2681   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2682   Utils::ApiCheck(obj->IsJSArrayBufferView(),
2683                   "v8::ArrayBufferView::Cast()",
2684                   "Could not convert to ArrayBufferView");
2685 }
2686 
2687 
CheckCast(Value * that)2688 void v8::TypedArray::CheckCast(Value* that) {
2689   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2690   Utils::ApiCheck(obj->IsJSTypedArray(),
2691                   "v8::TypedArray::Cast()",
2692                   "Could not convert to TypedArray");
2693 }
2694 
2695 
2696 #define CHECK_TYPED_ARRAY_CAST(Type, typeName, TYPE, ctype, size)             \
2697   void v8::Type##Array::CheckCast(Value* that) {                              \
2698     i::Handle<i::Object> obj = Utils::OpenHandle(that);                       \
2699     Utils::ApiCheck(obj->IsJSTypedArray() &&                                  \
2700                     i::JSTypedArray::cast(*obj)->type() ==                    \
2701                         kExternal##Type##Array,                               \
2702                     "v8::" #Type "Array::Cast()",                             \
2703                     "Could not convert to " #Type "Array");                   \
2704   }
2705 
2706 
TYPED_ARRAYS(CHECK_TYPED_ARRAY_CAST)2707 TYPED_ARRAYS(CHECK_TYPED_ARRAY_CAST)
2708 
2709 #undef CHECK_TYPED_ARRAY_CAST
2710 
2711 
2712 void v8::DataView::CheckCast(Value* that) {
2713   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2714   Utils::ApiCheck(obj->IsJSDataView(),
2715                   "v8::DataView::Cast()",
2716                   "Could not convert to DataView");
2717 }
2718 
2719 
CheckCast(v8::Value * that)2720 void v8::Date::CheckCast(v8::Value* that) {
2721   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2722   i::Isolate* isolate = NULL;
2723   if (obj->IsHeapObject()) isolate = i::HeapObject::cast(*obj)->GetIsolate();
2724   Utils::ApiCheck(isolate != NULL &&
2725                   obj->HasSpecificClassOf(isolate->heap()->Date_string()),
2726                   "v8::Date::Cast()",
2727                   "Could not convert to date");
2728 }
2729 
2730 
CheckCast(v8::Value * that)2731 void v8::StringObject::CheckCast(v8::Value* that) {
2732   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2733   i::Isolate* isolate = NULL;
2734   if (obj->IsHeapObject()) isolate = i::HeapObject::cast(*obj)->GetIsolate();
2735   Utils::ApiCheck(isolate != NULL &&
2736                   obj->HasSpecificClassOf(isolate->heap()->String_string()),
2737                   "v8::StringObject::Cast()",
2738                   "Could not convert to StringObject");
2739 }
2740 
2741 
CheckCast(v8::Value * that)2742 void v8::SymbolObject::CheckCast(v8::Value* that) {
2743   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2744   i::Isolate* isolate = NULL;
2745   if (obj->IsHeapObject()) isolate = i::HeapObject::cast(*obj)->GetIsolate();
2746   Utils::ApiCheck(isolate != NULL &&
2747                   obj->HasSpecificClassOf(isolate->heap()->Symbol_string()),
2748                   "v8::SymbolObject::Cast()",
2749                   "Could not convert to SymbolObject");
2750 }
2751 
2752 
CheckCast(v8::Value * that)2753 void v8::NumberObject::CheckCast(v8::Value* that) {
2754   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2755   i::Isolate* isolate = NULL;
2756   if (obj->IsHeapObject()) isolate = i::HeapObject::cast(*obj)->GetIsolate();
2757   Utils::ApiCheck(isolate != NULL &&
2758                   obj->HasSpecificClassOf(isolate->heap()->Number_string()),
2759                   "v8::NumberObject::Cast()",
2760                   "Could not convert to NumberObject");
2761 }
2762 
2763 
CheckCast(v8::Value * that)2764 void v8::BooleanObject::CheckCast(v8::Value* that) {
2765   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2766   i::Isolate* isolate = NULL;
2767   if (obj->IsHeapObject()) isolate = i::HeapObject::cast(*obj)->GetIsolate();
2768   Utils::ApiCheck(isolate != NULL &&
2769                   obj->HasSpecificClassOf(isolate->heap()->Boolean_string()),
2770                   "v8::BooleanObject::Cast()",
2771                   "Could not convert to BooleanObject");
2772 }
2773 
2774 
CheckCast(v8::Value * that)2775 void v8::RegExp::CheckCast(v8::Value* that) {
2776   i::Handle<i::Object> obj = Utils::OpenHandle(that);
2777   Utils::ApiCheck(obj->IsJSRegExp(),
2778                   "v8::RegExp::Cast()",
2779                   "Could not convert to regular expression");
2780 }
2781 
2782 
BooleanValue() const2783 bool Value::BooleanValue() const {
2784   return Utils::OpenHandle(this)->BooleanValue();
2785 }
2786 
2787 
NumberValue() const2788 double Value::NumberValue() const {
2789   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2790   i::Handle<i::Object> num;
2791   if (obj->IsNumber()) {
2792     num = obj;
2793   } else {
2794     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2795     LOG_API(isolate, "NumberValue");
2796     ENTER_V8(isolate);
2797     EXCEPTION_PREAMBLE(isolate);
2798     has_pending_exception = !i::Execution::ToNumber(
2799         isolate, obj).ToHandle(&num);
2800     EXCEPTION_BAILOUT_CHECK(isolate, i::OS::nan_value());
2801   }
2802   return num->Number();
2803 }
2804 
2805 
IntegerValue() const2806 int64_t Value::IntegerValue() const {
2807   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2808   i::Handle<i::Object> num;
2809   if (obj->IsNumber()) {
2810     num = obj;
2811   } else {
2812     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2813     LOG_API(isolate, "IntegerValue");
2814     ENTER_V8(isolate);
2815     EXCEPTION_PREAMBLE(isolate);
2816     has_pending_exception = !i::Execution::ToInteger(
2817         isolate, obj).ToHandle(&num);
2818     EXCEPTION_BAILOUT_CHECK(isolate, 0);
2819   }
2820   if (num->IsSmi()) {
2821     return i::Smi::cast(*num)->value();
2822   } else {
2823     return static_cast<int64_t>(num->Number());
2824   }
2825 }
2826 
2827 
ToInt32() const2828 Local<Int32> Value::ToInt32() const {
2829   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2830   i::Handle<i::Object> num;
2831   if (obj->IsSmi()) {
2832     num = obj;
2833   } else {
2834     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2835     LOG_API(isolate, "ToInt32");
2836     ENTER_V8(isolate);
2837     EXCEPTION_PREAMBLE(isolate);
2838     has_pending_exception = !i::Execution::ToInt32(isolate, obj).ToHandle(&num);
2839     EXCEPTION_BAILOUT_CHECK(isolate, Local<Int32>());
2840   }
2841   return ToApiHandle<Int32>(num);
2842 }
2843 
2844 
ToUint32() const2845 Local<Uint32> Value::ToUint32() const {
2846   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2847   i::Handle<i::Object> num;
2848   if (obj->IsSmi()) {
2849     num = obj;
2850   } else {
2851     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2852     LOG_API(isolate, "ToUInt32");
2853     ENTER_V8(isolate);
2854     EXCEPTION_PREAMBLE(isolate);
2855     has_pending_exception = !i::Execution::ToUint32(
2856         isolate, obj).ToHandle(&num);
2857     EXCEPTION_BAILOUT_CHECK(isolate, Local<Uint32>());
2858   }
2859   return ToApiHandle<Uint32>(num);
2860 }
2861 
2862 
ToArrayIndex() const2863 Local<Uint32> Value::ToArrayIndex() const {
2864   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2865   if (obj->IsSmi()) {
2866     if (i::Smi::cast(*obj)->value() >= 0) return Utils::Uint32ToLocal(obj);
2867     return Local<Uint32>();
2868   }
2869   i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2870   LOG_API(isolate, "ToArrayIndex");
2871   ENTER_V8(isolate);
2872   EXCEPTION_PREAMBLE(isolate);
2873   i::Handle<i::Object> string_obj;
2874   has_pending_exception = !i::Execution::ToString(
2875       isolate, obj).ToHandle(&string_obj);
2876   EXCEPTION_BAILOUT_CHECK(isolate, Local<Uint32>());
2877   i::Handle<i::String> str = i::Handle<i::String>::cast(string_obj);
2878   uint32_t index;
2879   if (str->AsArrayIndex(&index)) {
2880     i::Handle<i::Object> value;
2881     if (index <= static_cast<uint32_t>(i::Smi::kMaxValue)) {
2882       value = i::Handle<i::Object>(i::Smi::FromInt(index), isolate);
2883     } else {
2884       value = isolate->factory()->NewNumber(index);
2885     }
2886     return Utils::Uint32ToLocal(value);
2887   }
2888   return Local<Uint32>();
2889 }
2890 
2891 
Int32Value() const2892 int32_t Value::Int32Value() const {
2893   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2894   if (obj->IsSmi()) {
2895     return i::Smi::cast(*obj)->value();
2896   } else {
2897     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2898     LOG_API(isolate, "Int32Value (slow)");
2899     ENTER_V8(isolate);
2900     EXCEPTION_PREAMBLE(isolate);
2901     i::Handle<i::Object> num;
2902     has_pending_exception = !i::Execution::ToInt32(isolate, obj).ToHandle(&num);
2903     EXCEPTION_BAILOUT_CHECK(isolate, 0);
2904     if (num->IsSmi()) {
2905       return i::Smi::cast(*num)->value();
2906     } else {
2907       return static_cast<int32_t>(num->Number());
2908     }
2909   }
2910 }
2911 
2912 
Equals(Handle<Value> that) const2913 bool Value::Equals(Handle<Value> that) const {
2914   i::Isolate* isolate = i::Isolate::Current();
2915   i::Handle<i::Object> obj = Utils::OpenHandle(this, true);
2916   if (!Utils::ApiCheck(!obj.is_null() && !that.IsEmpty(),
2917                        "v8::Value::Equals()",
2918                        "Reading from empty handle")) {
2919     return false;
2920   }
2921   LOG_API(isolate, "Equals");
2922   ENTER_V8(isolate);
2923   i::Handle<i::Object> other = Utils::OpenHandle(*that);
2924   // If both obj and other are JSObjects, we'd better compare by identity
2925   // immediately when going into JS builtin.  The reason is Invoke
2926   // would overwrite global object receiver with global proxy.
2927   if (obj->IsJSObject() && other->IsJSObject()) {
2928     return *obj == *other;
2929   }
2930   i::Handle<i::Object> args[] = { other };
2931   EXCEPTION_PREAMBLE(isolate);
2932   i::Handle<i::Object> result;
2933   has_pending_exception = !CallV8HeapFunction(
2934       "EQUALS", obj, ARRAY_SIZE(args), args).ToHandle(&result);
2935   EXCEPTION_BAILOUT_CHECK(isolate, false);
2936   return *result == i::Smi::FromInt(i::EQUAL);
2937 }
2938 
2939 
StrictEquals(Handle<Value> that) const2940 bool Value::StrictEquals(Handle<Value> that) const {
2941   i::Isolate* isolate = i::Isolate::Current();
2942   i::Handle<i::Object> obj = Utils::OpenHandle(this, true);
2943   if (!Utils::ApiCheck(!obj.is_null() && !that.IsEmpty(),
2944                        "v8::Value::StrictEquals()",
2945                        "Reading from empty handle")) {
2946     return false;
2947   }
2948   LOG_API(isolate, "StrictEquals");
2949   i::Handle<i::Object> other = Utils::OpenHandle(*that);
2950   // Must check HeapNumber first, since NaN !== NaN.
2951   if (obj->IsHeapNumber()) {
2952     if (!other->IsNumber()) return false;
2953     double x = obj->Number();
2954     double y = other->Number();
2955     // Must check explicitly for NaN:s on Windows, but -0 works fine.
2956     return x == y && !std::isnan(x) && !std::isnan(y);
2957   } else if (*obj == *other) {  // Also covers Booleans.
2958     return true;
2959   } else if (obj->IsSmi()) {
2960     return other->IsNumber() && obj->Number() == other->Number();
2961   } else if (obj->IsString()) {
2962     return other->IsString() &&
2963         i::String::Equals(i::Handle<i::String>::cast(obj),
2964                           i::Handle<i::String>::cast(other));
2965   } else if (obj->IsUndefined() || obj->IsUndetectableObject()) {
2966     return other->IsUndefined() || other->IsUndetectableObject();
2967   } else {
2968     return false;
2969   }
2970 }
2971 
2972 
SameValue(Handle<Value> that) const2973 bool Value::SameValue(Handle<Value> that) const {
2974   i::Handle<i::Object> obj = Utils::OpenHandle(this, true);
2975   if (!Utils::ApiCheck(!obj.is_null() && !that.IsEmpty(),
2976                        "v8::Value::SameValue()",
2977                        "Reading from empty handle")) {
2978     return false;
2979   }
2980   i::Handle<i::Object> other = Utils::OpenHandle(*that);
2981   return obj->SameValue(*other);
2982 }
2983 
2984 
Uint32Value() const2985 uint32_t Value::Uint32Value() const {
2986   i::Handle<i::Object> obj = Utils::OpenHandle(this);
2987   if (obj->IsSmi()) {
2988     return i::Smi::cast(*obj)->value();
2989   } else {
2990     i::Isolate* isolate = i::HeapObject::cast(*obj)->GetIsolate();
2991     LOG_API(isolate, "Uint32Value");
2992     ENTER_V8(isolate);
2993     EXCEPTION_PREAMBLE(isolate);
2994     i::Handle<i::Object> num;
2995     has_pending_exception = !i::Execution::ToUint32(
2996         isolate, obj).ToHandle(&num);
2997     EXCEPTION_BAILOUT_CHECK(isolate, 0);
2998     if (num->IsSmi()) {
2999       return i::Smi::cast(*num)->value();
3000     } else {
3001       return static_cast<uint32_t>(num->Number());
3002     }
3003   }
3004 }
3005 
3006 
Set(v8::Handle<Value> key,v8::Handle<Value> value,v8::PropertyAttribute attribs)3007 bool v8::Object::Set(v8::Handle<Value> key, v8::Handle<Value> value,
3008                      v8::PropertyAttribute attribs) {
3009   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3010   ON_BAILOUT(isolate, "v8::Object::Set()", return false);
3011   ENTER_V8(isolate);
3012   i::HandleScope scope(isolate);
3013   i::Handle<i::Object> self = Utils::OpenHandle(this);
3014   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3015   i::Handle<i::Object> value_obj = Utils::OpenHandle(*value);
3016   EXCEPTION_PREAMBLE(isolate);
3017   has_pending_exception = i::Runtime::SetObjectProperty(
3018       isolate,
3019       self,
3020       key_obj,
3021       value_obj,
3022       static_cast<PropertyAttributes>(attribs),
3023       i::SLOPPY).is_null();
3024   EXCEPTION_BAILOUT_CHECK(isolate, false);
3025   return true;
3026 }
3027 
3028 
Set(uint32_t index,v8::Handle<Value> value)3029 bool v8::Object::Set(uint32_t index, v8::Handle<Value> value) {
3030   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3031   ON_BAILOUT(isolate, "v8::Object::Set()", return false);
3032   ENTER_V8(isolate);
3033   i::HandleScope scope(isolate);
3034   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3035   i::Handle<i::Object> value_obj = Utils::OpenHandle(*value);
3036   EXCEPTION_PREAMBLE(isolate);
3037   has_pending_exception = i::JSObject::SetElement(
3038       self, index, value_obj, NONE, i::SLOPPY).is_null();
3039   EXCEPTION_BAILOUT_CHECK(isolate, false);
3040   return true;
3041 }
3042 
3043 
ForceSet(v8::Handle<Value> key,v8::Handle<Value> value,v8::PropertyAttribute attribs)3044 bool v8::Object::ForceSet(v8::Handle<Value> key,
3045                           v8::Handle<Value> value,
3046                           v8::PropertyAttribute attribs) {
3047   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3048   ON_BAILOUT(isolate, "v8::Object::ForceSet()", return false);
3049   ENTER_V8(isolate);
3050   i::HandleScope scope(isolate);
3051   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3052   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3053   i::Handle<i::Object> value_obj = Utils::OpenHandle(*value);
3054   EXCEPTION_PREAMBLE(isolate);
3055   has_pending_exception = i::Runtime::ForceSetObjectProperty(
3056       self,
3057       key_obj,
3058       value_obj,
3059       static_cast<PropertyAttributes>(attribs)).is_null();
3060   EXCEPTION_BAILOUT_CHECK(isolate, false);
3061   return true;
3062 }
3063 
3064 
SetPrivate(v8::Handle<Private> key,v8::Handle<Value> value)3065 bool v8::Object::SetPrivate(v8::Handle<Private> key, v8::Handle<Value> value) {
3066   return ForceSet(v8::Handle<Value>(reinterpret_cast<Value*>(*key)),
3067                   value, DontEnum);
3068 }
3069 
3070 
ForceDelete(v8::Handle<Value> key)3071 bool v8::Object::ForceDelete(v8::Handle<Value> key) {
3072   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3073   ON_BAILOUT(isolate, "v8::Object::ForceDelete()", return false);
3074   ENTER_V8(isolate);
3075   i::HandleScope scope(isolate);
3076   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3077   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3078 
3079   // When deleting a property on the global object using ForceDelete
3080   // deoptimize all functions as optimized code does not check for the hole
3081   // value with DontDelete properties.  We have to deoptimize all contexts
3082   // because of possible cross-context inlined functions.
3083   if (self->IsJSGlobalProxy() || self->IsGlobalObject()) {
3084     i::Deoptimizer::DeoptimizeAll(isolate);
3085   }
3086 
3087   EXCEPTION_PREAMBLE(isolate);
3088   i::Handle<i::Object> obj;
3089   has_pending_exception = !i::Runtime::DeleteObjectProperty(
3090       isolate, self, key_obj, i::JSReceiver::FORCE_DELETION).ToHandle(&obj);
3091   EXCEPTION_BAILOUT_CHECK(isolate, false);
3092   return obj->IsTrue();
3093 }
3094 
3095 
Get(v8::Handle<Value> key)3096 Local<Value> v8::Object::Get(v8::Handle<Value> key) {
3097   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3098   ON_BAILOUT(isolate, "v8::Object::Get()", return Local<v8::Value>());
3099   ENTER_V8(isolate);
3100   i::Handle<i::Object> self = Utils::OpenHandle(this);
3101   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3102   EXCEPTION_PREAMBLE(isolate);
3103   i::Handle<i::Object> result;
3104   has_pending_exception =
3105       !i::Runtime::GetObjectProperty(isolate, self, key_obj).ToHandle(&result);
3106   EXCEPTION_BAILOUT_CHECK(isolate, Local<Value>());
3107   return Utils::ToLocal(result);
3108 }
3109 
3110 
Get(uint32_t index)3111 Local<Value> v8::Object::Get(uint32_t index) {
3112   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3113   ON_BAILOUT(isolate, "v8::Object::Get()", return Local<v8::Value>());
3114   ENTER_V8(isolate);
3115   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3116   EXCEPTION_PREAMBLE(isolate);
3117   i::Handle<i::Object> result;
3118   has_pending_exception =
3119       !i::Object::GetElement(isolate, self, index).ToHandle(&result);
3120   EXCEPTION_BAILOUT_CHECK(isolate, Local<Value>());
3121   return Utils::ToLocal(result);
3122 }
3123 
3124 
GetPrivate(v8::Handle<Private> key)3125 Local<Value> v8::Object::GetPrivate(v8::Handle<Private> key) {
3126   return Get(v8::Handle<Value>(reinterpret_cast<Value*>(*key)));
3127 }
3128 
3129 
GetPropertyAttributes(v8::Handle<Value> key)3130 PropertyAttribute v8::Object::GetPropertyAttributes(v8::Handle<Value> key) {
3131   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3132   ON_BAILOUT(isolate, "v8::Object::GetPropertyAttributes()",
3133              return static_cast<PropertyAttribute>(NONE));
3134   ENTER_V8(isolate);
3135   i::HandleScope scope(isolate);
3136   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3137   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3138   if (!key_obj->IsName()) {
3139     EXCEPTION_PREAMBLE(isolate);
3140     has_pending_exception = !i::Execution::ToString(
3141         isolate, key_obj).ToHandle(&key_obj);
3142     EXCEPTION_BAILOUT_CHECK(isolate, static_cast<PropertyAttribute>(NONE));
3143   }
3144   i::Handle<i::Name> key_name = i::Handle<i::Name>::cast(key_obj);
3145   PropertyAttributes result =
3146       i::JSReceiver::GetPropertyAttributes(self, key_name);
3147   if (result == ABSENT) return static_cast<PropertyAttribute>(NONE);
3148   return static_cast<PropertyAttribute>(result);
3149 }
3150 
3151 
GetPrototype()3152 Local<Value> v8::Object::GetPrototype() {
3153   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3154   ON_BAILOUT(isolate, "v8::Object::GetPrototype()", return Local<v8::Value>());
3155   ENTER_V8(isolate);
3156   i::Handle<i::Object> self = Utils::OpenHandle(this);
3157   i::Handle<i::Object> result(self->GetPrototype(isolate), isolate);
3158   return Utils::ToLocal(result);
3159 }
3160 
3161 
SetPrototype(Handle<Value> value)3162 bool v8::Object::SetPrototype(Handle<Value> value) {
3163   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3164   ON_BAILOUT(isolate, "v8::Object::SetPrototype()", return false);
3165   ENTER_V8(isolate);
3166   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3167   i::Handle<i::Object> value_obj = Utils::OpenHandle(*value);
3168   // We do not allow exceptions thrown while setting the prototype
3169   // to propagate outside.
3170   TryCatch try_catch;
3171   EXCEPTION_PREAMBLE(isolate);
3172   i::MaybeHandle<i::Object> result = i::JSObject::SetPrototype(
3173       self, value_obj);
3174   has_pending_exception = result.is_null();
3175   EXCEPTION_BAILOUT_CHECK(isolate, false);
3176   return true;
3177 }
3178 
3179 
FindInstanceInPrototypeChain(v8::Handle<FunctionTemplate> tmpl)3180 Local<Object> v8::Object::FindInstanceInPrototypeChain(
3181     v8::Handle<FunctionTemplate> tmpl) {
3182   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3183   ON_BAILOUT(isolate,
3184              "v8::Object::FindInstanceInPrototypeChain()",
3185              return Local<v8::Object>());
3186   ENTER_V8(isolate);
3187   i::JSObject* object = *Utils::OpenHandle(this);
3188   i::FunctionTemplateInfo* tmpl_info = *Utils::OpenHandle(*tmpl);
3189   while (!tmpl_info->IsTemplateFor(object)) {
3190     i::Object* prototype = object->GetPrototype();
3191     if (!prototype->IsJSObject()) return Local<Object>();
3192     object = i::JSObject::cast(prototype);
3193   }
3194   return Utils::ToLocal(i::Handle<i::JSObject>(object));
3195 }
3196 
3197 
GetPropertyNames()3198 Local<Array> v8::Object::GetPropertyNames() {
3199   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3200   ON_BAILOUT(isolate, "v8::Object::GetPropertyNames()",
3201              return Local<v8::Array>());
3202   ENTER_V8(isolate);
3203   i::HandleScope scope(isolate);
3204   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3205   EXCEPTION_PREAMBLE(isolate);
3206   i::Handle<i::FixedArray> value;
3207   has_pending_exception = !i::JSReceiver::GetKeys(
3208       self, i::JSReceiver::INCLUDE_PROTOS).ToHandle(&value);
3209   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::Array>());
3210   // Because we use caching to speed up enumeration it is important
3211   // to never change the result of the basic enumeration function so
3212   // we clone the result.
3213   i::Handle<i::FixedArray> elms = isolate->factory()->CopyFixedArray(value);
3214   i::Handle<i::JSArray> result =
3215       isolate->factory()->NewJSArrayWithElements(elms);
3216   return Utils::ToLocal(scope.CloseAndEscape(result));
3217 }
3218 
3219 
GetOwnPropertyNames()3220 Local<Array> v8::Object::GetOwnPropertyNames() {
3221   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3222   ON_BAILOUT(isolate, "v8::Object::GetOwnPropertyNames()",
3223              return Local<v8::Array>());
3224   ENTER_V8(isolate);
3225   i::HandleScope scope(isolate);
3226   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3227   EXCEPTION_PREAMBLE(isolate);
3228   i::Handle<i::FixedArray> value;
3229   has_pending_exception = !i::JSReceiver::GetKeys(
3230       self, i::JSReceiver::OWN_ONLY).ToHandle(&value);
3231   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::Array>());
3232   // Because we use caching to speed up enumeration it is important
3233   // to never change the result of the basic enumeration function so
3234   // we clone the result.
3235   i::Handle<i::FixedArray> elms = isolate->factory()->CopyFixedArray(value);
3236   i::Handle<i::JSArray> result =
3237       isolate->factory()->NewJSArrayWithElements(elms);
3238   return Utils::ToLocal(scope.CloseAndEscape(result));
3239 }
3240 
3241 
ObjectProtoToString()3242 Local<String> v8::Object::ObjectProtoToString() {
3243   i::Isolate* i_isolate = Utils::OpenHandle(this)->GetIsolate();
3244   Isolate* isolate = reinterpret_cast<Isolate*>(i_isolate);
3245   ON_BAILOUT(i_isolate, "v8::Object::ObjectProtoToString()",
3246              return Local<v8::String>());
3247   ENTER_V8(i_isolate);
3248   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3249 
3250   i::Handle<i::Object> name(self->class_name(), i_isolate);
3251 
3252   // Native implementation of Object.prototype.toString (v8natives.js):
3253   //   var c = %_ClassOf(this);
3254   //   if (c === 'Arguments') c  = 'Object';
3255   //   return "[object " + c + "]";
3256 
3257   if (!name->IsString()) {
3258     return v8::String::NewFromUtf8(isolate, "[object ]");
3259   } else {
3260     i::Handle<i::String> class_name = i::Handle<i::String>::cast(name);
3261     if (class_name->IsOneByteEqualTo(STATIC_ASCII_VECTOR("Arguments"))) {
3262       return v8::String::NewFromUtf8(isolate, "[object Object]");
3263     } else {
3264       const char* prefix = "[object ";
3265       Local<String> str = Utils::ToLocal(class_name);
3266       const char* postfix = "]";
3267 
3268       int prefix_len = i::StrLength(prefix);
3269       int str_len = str->Utf8Length();
3270       int postfix_len = i::StrLength(postfix);
3271 
3272       int buf_len = prefix_len + str_len + postfix_len;
3273       i::ScopedVector<char> buf(buf_len);
3274 
3275       // Write prefix.
3276       char* ptr = buf.start();
3277       i::MemCopy(ptr, prefix, prefix_len * v8::internal::kCharSize);
3278       ptr += prefix_len;
3279 
3280       // Write real content.
3281       str->WriteUtf8(ptr, str_len);
3282       ptr += str_len;
3283 
3284       // Write postfix.
3285       i::MemCopy(ptr, postfix, postfix_len * v8::internal::kCharSize);
3286 
3287       // Copy the buffer into a heap-allocated string and return it.
3288       Local<String> result = v8::String::NewFromUtf8(
3289           isolate, buf.start(), String::kNormalString, buf_len);
3290       return result;
3291     }
3292   }
3293 }
3294 
3295 
GetConstructor()3296 Local<Value> v8::Object::GetConstructor() {
3297   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3298   ON_BAILOUT(isolate, "v8::Object::GetConstructor()",
3299              return Local<v8::Function>());
3300   ENTER_V8(isolate);
3301   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3302   i::Handle<i::Object> constructor(self->GetConstructor(), isolate);
3303   return Utils::ToLocal(constructor);
3304 }
3305 
3306 
GetConstructorName()3307 Local<String> v8::Object::GetConstructorName() {
3308   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3309   ON_BAILOUT(isolate, "v8::Object::GetConstructorName()",
3310              return Local<v8::String>());
3311   ENTER_V8(isolate);
3312   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3313   i::Handle<i::String> name(self->constructor_name());
3314   return Utils::ToLocal(name);
3315 }
3316 
3317 
Delete(v8::Handle<Value> key)3318 bool v8::Object::Delete(v8::Handle<Value> key) {
3319   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3320   ON_BAILOUT(isolate, "v8::Object::Delete()", return false);
3321   ENTER_V8(isolate);
3322   i::HandleScope scope(isolate);
3323   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3324   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3325   EXCEPTION_PREAMBLE(isolate);
3326   i::Handle<i::Object> obj;
3327   has_pending_exception = !i::Runtime::DeleteObjectProperty(
3328       isolate, self, key_obj, i::JSReceiver::NORMAL_DELETION).ToHandle(&obj);
3329   EXCEPTION_BAILOUT_CHECK(isolate, false);
3330   return obj->IsTrue();
3331 }
3332 
3333 
DeletePrivate(v8::Handle<Private> key)3334 bool v8::Object::DeletePrivate(v8::Handle<Private> key) {
3335   return Delete(v8::Handle<Value>(reinterpret_cast<Value*>(*key)));
3336 }
3337 
3338 
Has(v8::Handle<Value> key)3339 bool v8::Object::Has(v8::Handle<Value> key) {
3340   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3341   ON_BAILOUT(isolate, "v8::Object::Has()", return false);
3342   ENTER_V8(isolate);
3343   i::Handle<i::JSReceiver> self = Utils::OpenHandle(this);
3344   i::Handle<i::Object> key_obj = Utils::OpenHandle(*key);
3345   EXCEPTION_PREAMBLE(isolate);
3346   i::Handle<i::Object> obj;
3347   has_pending_exception = !i::Runtime::HasObjectProperty(
3348       isolate, self, key_obj).ToHandle(&obj);
3349   EXCEPTION_BAILOUT_CHECK(isolate, false);
3350   return obj->IsTrue();
3351 }
3352 
3353 
HasPrivate(v8::Handle<Private> key)3354 bool v8::Object::HasPrivate(v8::Handle<Private> key) {
3355   // TODO(rossberg): this should use HasOwnProperty, but we'd need to
3356   // generalise that to a (noy yet existant) Name argument first.
3357   return Has(v8::Handle<Value>(reinterpret_cast<Value*>(*key)));
3358 }
3359 
3360 
Delete(uint32_t index)3361 bool v8::Object::Delete(uint32_t index) {
3362   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3363   ON_BAILOUT(isolate, "v8::Object::DeleteProperty()",
3364              return false);
3365   ENTER_V8(isolate);
3366   HandleScope scope(reinterpret_cast<Isolate*>(isolate));
3367   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3368 
3369   EXCEPTION_PREAMBLE(isolate);
3370   i::Handle<i::Object> obj;
3371   has_pending_exception =
3372       !i::JSReceiver::DeleteElement(self, index).ToHandle(&obj);
3373   EXCEPTION_BAILOUT_CHECK(isolate, false);
3374   return obj->IsTrue();
3375 }
3376 
3377 
Has(uint32_t index)3378 bool v8::Object::Has(uint32_t index) {
3379   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3380   ON_BAILOUT(isolate, "v8::Object::HasProperty()", return false);
3381   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3382   return i::JSReceiver::HasElement(self, index);
3383 }
3384 
3385 
3386 template<typename Setter, typename Getter, typename Data>
ObjectSetAccessor(Object * obj,Handle<String> name,Setter getter,Getter setter,Data data,AccessControl settings,PropertyAttribute attributes)3387 static inline bool ObjectSetAccessor(Object* obj,
3388                                      Handle<String> name,
3389                                      Setter getter,
3390                                      Getter setter,
3391                                      Data data,
3392                                      AccessControl settings,
3393                                      PropertyAttribute attributes) {
3394   i::Isolate* isolate = Utils::OpenHandle(obj)->GetIsolate();
3395   ON_BAILOUT(isolate, "v8::Object::SetAccessor()", return false);
3396   ENTER_V8(isolate);
3397   i::HandleScope scope(isolate);
3398   v8::Handle<AccessorSignature> signature;
3399   i::Handle<i::AccessorInfo> info = MakeAccessorInfo(
3400       name, getter, setter, data, settings, attributes, signature);
3401   if (info.is_null()) return false;
3402   bool fast = Utils::OpenHandle(obj)->HasFastProperties();
3403   i::Handle<i::Object> result;
3404   ASSIGN_RETURN_ON_EXCEPTION_VALUE(
3405       isolate, result,
3406       i::JSObject::SetAccessor(Utils::OpenHandle(obj), info),
3407       false);
3408   if (result->IsUndefined()) return false;
3409   if (fast) i::JSObject::TransformToFastProperties(Utils::OpenHandle(obj), 0);
3410   return true;
3411 }
3412 
3413 
SetAccessor(Handle<String> name,AccessorGetterCallback getter,AccessorSetterCallback setter,v8::Handle<Value> data,AccessControl settings,PropertyAttribute attributes)3414 bool Object::SetAccessor(Handle<String> name,
3415                          AccessorGetterCallback getter,
3416                          AccessorSetterCallback setter,
3417                          v8::Handle<Value> data,
3418                          AccessControl settings,
3419                          PropertyAttribute attributes) {
3420   return ObjectSetAccessor(
3421       this, name, getter, setter, data, settings, attributes);
3422 }
3423 
3424 
SetDeclaredAccessor(Local<String> name,Local<DeclaredAccessorDescriptor> descriptor,PropertyAttribute attributes,AccessControl settings)3425 bool Object::SetDeclaredAccessor(Local<String> name,
3426                                  Local<DeclaredAccessorDescriptor> descriptor,
3427                                  PropertyAttribute attributes,
3428                                  AccessControl settings) {
3429   void* null = NULL;
3430   return ObjectSetAccessor(
3431       this, name, descriptor, null, null, settings, attributes);
3432 }
3433 
3434 
SetAccessorProperty(Local<String> name,Local<Function> getter,Handle<Function> setter,PropertyAttribute attribute,AccessControl settings)3435 void Object::SetAccessorProperty(Local<String> name,
3436                                  Local<Function> getter,
3437                                  Handle<Function> setter,
3438                                  PropertyAttribute attribute,
3439                                  AccessControl settings) {
3440   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3441   ON_BAILOUT(isolate, "v8::Object::SetAccessorProperty()", return);
3442   ENTER_V8(isolate);
3443   i::HandleScope scope(isolate);
3444   i::Handle<i::Object> getter_i = v8::Utils::OpenHandle(*getter);
3445   i::Handle<i::Object> setter_i = v8::Utils::OpenHandle(*setter, true);
3446   if (setter_i.is_null()) setter_i = isolate->factory()->null_value();
3447   i::JSObject::DefineAccessor(v8::Utils::OpenHandle(this),
3448                               v8::Utils::OpenHandle(*name),
3449                               getter_i,
3450                               setter_i,
3451                               static_cast<PropertyAttributes>(attribute),
3452                               settings);
3453 }
3454 
3455 
HasOwnProperty(Handle<String> key)3456 bool v8::Object::HasOwnProperty(Handle<String> key) {
3457   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3458   ON_BAILOUT(isolate, "v8::Object::HasOwnProperty()",
3459              return false);
3460   return i::JSReceiver::HasOwnProperty(
3461       Utils::OpenHandle(this), Utils::OpenHandle(*key));
3462 }
3463 
3464 
HasRealNamedProperty(Handle<String> key)3465 bool v8::Object::HasRealNamedProperty(Handle<String> key) {
3466   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3467   ON_BAILOUT(isolate, "v8::Object::HasRealNamedProperty()",
3468              return false);
3469   return i::JSObject::HasRealNamedProperty(Utils::OpenHandle(this),
3470                                            Utils::OpenHandle(*key));
3471 }
3472 
3473 
HasRealIndexedProperty(uint32_t index)3474 bool v8::Object::HasRealIndexedProperty(uint32_t index) {
3475   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3476   ON_BAILOUT(isolate, "v8::Object::HasRealIndexedProperty()",
3477              return false);
3478   return i::JSObject::HasRealElementProperty(Utils::OpenHandle(this), index);
3479 }
3480 
3481 
HasRealNamedCallbackProperty(Handle<String> key)3482 bool v8::Object::HasRealNamedCallbackProperty(Handle<String> key) {
3483   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3484   ON_BAILOUT(isolate,
3485              "v8::Object::HasRealNamedCallbackProperty()",
3486              return false);
3487   ENTER_V8(isolate);
3488   return i::JSObject::HasRealNamedCallbackProperty(Utils::OpenHandle(this),
3489                                                    Utils::OpenHandle(*key));
3490 }
3491 
3492 
HasNamedLookupInterceptor()3493 bool v8::Object::HasNamedLookupInterceptor() {
3494   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3495   ON_BAILOUT(isolate, "v8::Object::HasNamedLookupInterceptor()",
3496              return false);
3497   return Utils::OpenHandle(this)->HasNamedInterceptor();
3498 }
3499 
3500 
HasIndexedLookupInterceptor()3501 bool v8::Object::HasIndexedLookupInterceptor() {
3502   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3503   ON_BAILOUT(isolate, "v8::Object::HasIndexedLookupInterceptor()",
3504              return false);
3505   return Utils::OpenHandle(this)->HasIndexedInterceptor();
3506 }
3507 
3508 
GetPropertyByLookup(i::Isolate * isolate,i::Handle<i::JSObject> receiver,i::Handle<i::String> name,i::LookupResult * lookup)3509 static Local<Value> GetPropertyByLookup(i::Isolate* isolate,
3510                                         i::Handle<i::JSObject> receiver,
3511                                         i::Handle<i::String> name,
3512                                         i::LookupResult* lookup) {
3513   if (!lookup->IsProperty()) {
3514     // No real property was found.
3515     return Local<Value>();
3516   }
3517 
3518   // If the property being looked up is a callback, it can throw
3519   // an exception.
3520   EXCEPTION_PREAMBLE(isolate);
3521   i::LookupIterator it(
3522       receiver, name, i::Handle<i::JSReceiver>(lookup->holder(), isolate),
3523       i::LookupIterator::SKIP_INTERCEPTOR);
3524   i::Handle<i::Object> result;
3525   has_pending_exception = !i::Object::GetProperty(&it).ToHandle(&result);
3526   EXCEPTION_BAILOUT_CHECK(isolate, Local<Value>());
3527 
3528   return Utils::ToLocal(result);
3529 }
3530 
3531 
GetRealNamedPropertyInPrototypeChain(Handle<String> key)3532 Local<Value> v8::Object::GetRealNamedPropertyInPrototypeChain(
3533     Handle<String> key) {
3534   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3535   ON_BAILOUT(isolate,
3536              "v8::Object::GetRealNamedPropertyInPrototypeChain()",
3537              return Local<Value>());
3538   ENTER_V8(isolate);
3539   i::Handle<i::JSObject> self_obj = Utils::OpenHandle(this);
3540   i::Handle<i::String> key_obj = Utils::OpenHandle(*key);
3541   i::LookupResult lookup(isolate);
3542   self_obj->LookupRealNamedPropertyInPrototypes(key_obj, &lookup);
3543   return GetPropertyByLookup(isolate, self_obj, key_obj, &lookup);
3544 }
3545 
3546 
GetRealNamedProperty(Handle<String> key)3547 Local<Value> v8::Object::GetRealNamedProperty(Handle<String> key) {
3548   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3549   ON_BAILOUT(isolate, "v8::Object::GetRealNamedProperty()",
3550              return Local<Value>());
3551   ENTER_V8(isolate);
3552   i::Handle<i::JSObject> self_obj = Utils::OpenHandle(this);
3553   i::Handle<i::String> key_obj = Utils::OpenHandle(*key);
3554   i::LookupResult lookup(isolate);
3555   self_obj->LookupRealNamedProperty(key_obj, &lookup);
3556   return GetPropertyByLookup(isolate, self_obj, key_obj, &lookup);
3557 }
3558 
3559 
3560 // Turns on access checks by copying the map and setting the check flag.
3561 // Because the object gets a new map, existing inline cache caching
3562 // the old map of this object will fail.
TurnOnAccessCheck()3563 void v8::Object::TurnOnAccessCheck() {
3564   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3565   ON_BAILOUT(isolate, "v8::Object::TurnOnAccessCheck()", return);
3566   ENTER_V8(isolate);
3567   i::HandleScope scope(isolate);
3568   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
3569 
3570   // When turning on access checks for a global object deoptimize all functions
3571   // as optimized code does not always handle access checks.
3572   i::Deoptimizer::DeoptimizeGlobalObject(*obj);
3573 
3574   i::Handle<i::Map> new_map = i::Map::Copy(i::Handle<i::Map>(obj->map()));
3575   new_map->set_is_access_check_needed(true);
3576   obj->set_map(*new_map);
3577 }
3578 
3579 
IsDirty()3580 bool v8::Object::IsDirty() {
3581   return Utils::OpenHandle(this)->IsDirty();
3582 }
3583 
3584 
Clone()3585 Local<v8::Object> v8::Object::Clone() {
3586   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3587   ON_BAILOUT(isolate, "v8::Object::Clone()", return Local<Object>());
3588   ENTER_V8(isolate);
3589   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3590   EXCEPTION_PREAMBLE(isolate);
3591   i::Handle<i::JSObject> result = isolate->factory()->CopyJSObject(self);
3592   has_pending_exception = result.is_null();
3593   EXCEPTION_BAILOUT_CHECK(isolate, Local<Object>());
3594   return Utils::ToLocal(result);
3595 }
3596 
3597 
CreationContext()3598 Local<v8::Context> v8::Object::CreationContext() {
3599   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3600   ON_BAILOUT(isolate,
3601              "v8::Object::CreationContext()", return Local<v8::Context>());
3602   ENTER_V8(isolate);
3603   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3604   i::Context* context = self->GetCreationContext();
3605   return Utils::ToLocal(i::Handle<i::Context>(context));
3606 }
3607 
3608 
GetIdentityHash()3609 int v8::Object::GetIdentityHash() {
3610   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3611   ON_BAILOUT(isolate, "v8::Object::GetIdentityHash()", return 0);
3612   ENTER_V8(isolate);
3613   i::HandleScope scope(isolate);
3614   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3615   return i::JSReceiver::GetOrCreateIdentityHash(self)->value();
3616 }
3617 
3618 
SetHiddenValue(v8::Handle<v8::String> key,v8::Handle<v8::Value> value)3619 bool v8::Object::SetHiddenValue(v8::Handle<v8::String> key,
3620                                 v8::Handle<v8::Value> value) {
3621   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3622   ON_BAILOUT(isolate, "v8::Object::SetHiddenValue()", return false);
3623   if (value.IsEmpty()) return DeleteHiddenValue(key);
3624   ENTER_V8(isolate);
3625   i::HandleScope scope(isolate);
3626   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3627   i::Handle<i::String> key_obj = Utils::OpenHandle(*key);
3628   i::Handle<i::String> key_string =
3629       isolate->factory()->InternalizeString(key_obj);
3630   i::Handle<i::Object> value_obj = Utils::OpenHandle(*value);
3631   i::Handle<i::Object> result =
3632       i::JSObject::SetHiddenProperty(self, key_string, value_obj);
3633   return *result == *self;
3634 }
3635 
3636 
GetHiddenValue(v8::Handle<v8::String> key)3637 v8::Local<v8::Value> v8::Object::GetHiddenValue(v8::Handle<v8::String> key) {
3638   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3639   ON_BAILOUT(isolate, "v8::Object::GetHiddenValue()",
3640              return Local<v8::Value>());
3641   ENTER_V8(isolate);
3642   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3643   i::Handle<i::String> key_obj = Utils::OpenHandle(*key);
3644   i::Handle<i::String> key_string =
3645       isolate->factory()->InternalizeString(key_obj);
3646   i::Handle<i::Object> result(self->GetHiddenProperty(key_string), isolate);
3647   if (result->IsTheHole()) return v8::Local<v8::Value>();
3648   return Utils::ToLocal(result);
3649 }
3650 
3651 
DeleteHiddenValue(v8::Handle<v8::String> key)3652 bool v8::Object::DeleteHiddenValue(v8::Handle<v8::String> key) {
3653   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3654   ON_BAILOUT(isolate, "v8::DeleteHiddenValue()", return false);
3655   ENTER_V8(isolate);
3656   i::HandleScope scope(isolate);
3657   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3658   i::Handle<i::String> key_obj = Utils::OpenHandle(*key);
3659   i::Handle<i::String> key_string =
3660       isolate->factory()->InternalizeString(key_obj);
3661   i::JSObject::DeleteHiddenProperty(self, key_string);
3662   return true;
3663 }
3664 
3665 
3666 namespace {
3667 
GetElementsKindFromExternalArrayType(ExternalArrayType array_type)3668 static i::ElementsKind GetElementsKindFromExternalArrayType(
3669     ExternalArrayType array_type) {
3670   switch (array_type) {
3671 #define ARRAY_TYPE_TO_ELEMENTS_KIND(Type, type, TYPE, ctype, size)            \
3672     case kExternal##Type##Array:                                              \
3673       return i::EXTERNAL_##TYPE##_ELEMENTS;
3674 
3675     TYPED_ARRAYS(ARRAY_TYPE_TO_ELEMENTS_KIND)
3676 #undef ARRAY_TYPE_TO_ELEMENTS_KIND
3677   }
3678   UNREACHABLE();
3679   return i::DICTIONARY_ELEMENTS;
3680 }
3681 
3682 
PrepareExternalArrayElements(i::Handle<i::JSObject> object,void * data,ExternalArrayType array_type,int length)3683 void PrepareExternalArrayElements(i::Handle<i::JSObject> object,
3684                                   void* data,
3685                                   ExternalArrayType array_type,
3686                                   int length) {
3687   i::Isolate* isolate = object->GetIsolate();
3688   i::Handle<i::ExternalArray> array =
3689       isolate->factory()->NewExternalArray(length, array_type, data);
3690 
3691   i::Handle<i::Map> external_array_map =
3692       i::JSObject::GetElementsTransitionMap(
3693           object,
3694           GetElementsKindFromExternalArrayType(array_type));
3695 
3696   i::JSObject::SetMapAndElements(object, external_array_map, array);
3697 }
3698 
3699 }  // namespace
3700 
3701 
SetIndexedPropertiesToPixelData(uint8_t * data,int length)3702 void v8::Object::SetIndexedPropertiesToPixelData(uint8_t* data, int length) {
3703   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3704   ON_BAILOUT(isolate, "v8::SetElementsToPixelData()", return);
3705   ENTER_V8(isolate);
3706   i::HandleScope scope(isolate);
3707   if (!Utils::ApiCheck(length >= 0 &&
3708                        length <= i::ExternalUint8ClampedArray::kMaxLength,
3709                        "v8::Object::SetIndexedPropertiesToPixelData()",
3710                        "length exceeds max acceptable value")) {
3711     return;
3712   }
3713   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3714   if (!Utils::ApiCheck(!self->IsJSArray(),
3715                        "v8::Object::SetIndexedPropertiesToPixelData()",
3716                        "JSArray is not supported")) {
3717     return;
3718   }
3719   PrepareExternalArrayElements(self, data, kExternalUint8ClampedArray, length);
3720 }
3721 
3722 
HasIndexedPropertiesInPixelData()3723 bool v8::Object::HasIndexedPropertiesInPixelData() {
3724   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3725   ON_BAILOUT(self->GetIsolate(), "v8::HasIndexedPropertiesInPixelData()",
3726              return false);
3727   return self->HasExternalUint8ClampedElements();
3728 }
3729 
3730 
GetIndexedPropertiesPixelData()3731 uint8_t* v8::Object::GetIndexedPropertiesPixelData() {
3732   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3733   ON_BAILOUT(self->GetIsolate(), "v8::GetIndexedPropertiesPixelData()",
3734              return NULL);
3735   if (self->HasExternalUint8ClampedElements()) {
3736     return i::ExternalUint8ClampedArray::cast(self->elements())->
3737         external_uint8_clamped_pointer();
3738   } else {
3739     return NULL;
3740   }
3741 }
3742 
3743 
GetIndexedPropertiesPixelDataLength()3744 int v8::Object::GetIndexedPropertiesPixelDataLength() {
3745   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3746   ON_BAILOUT(self->GetIsolate(), "v8::GetIndexedPropertiesPixelDataLength()",
3747              return -1);
3748   if (self->HasExternalUint8ClampedElements()) {
3749     return i::ExternalUint8ClampedArray::cast(self->elements())->length();
3750   } else {
3751     return -1;
3752   }
3753 }
3754 
3755 
SetIndexedPropertiesToExternalArrayData(void * data,ExternalArrayType array_type,int length)3756 void v8::Object::SetIndexedPropertiesToExternalArrayData(
3757     void* data,
3758     ExternalArrayType array_type,
3759     int length) {
3760   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3761   ON_BAILOUT(isolate, "v8::SetIndexedPropertiesToExternalArrayData()", return);
3762   ENTER_V8(isolate);
3763   i::HandleScope scope(isolate);
3764   if (!Utils::ApiCheck(length >= 0 && length <= i::ExternalArray::kMaxLength,
3765                        "v8::Object::SetIndexedPropertiesToExternalArrayData()",
3766                        "length exceeds max acceptable value")) {
3767     return;
3768   }
3769   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3770   if (!Utils::ApiCheck(!self->IsJSArray(),
3771                        "v8::Object::SetIndexedPropertiesToExternalArrayData()",
3772                        "JSArray is not supported")) {
3773     return;
3774   }
3775   PrepareExternalArrayElements(self, data, array_type, length);
3776 }
3777 
3778 
HasIndexedPropertiesInExternalArrayData()3779 bool v8::Object::HasIndexedPropertiesInExternalArrayData() {
3780   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3781   ON_BAILOUT(self->GetIsolate(),
3782              "v8::HasIndexedPropertiesInExternalArrayData()",
3783              return false);
3784   return self->HasExternalArrayElements();
3785 }
3786 
3787 
GetIndexedPropertiesExternalArrayData()3788 void* v8::Object::GetIndexedPropertiesExternalArrayData() {
3789   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3790   ON_BAILOUT(self->GetIsolate(),
3791              "v8::GetIndexedPropertiesExternalArrayData()",
3792              return NULL);
3793   if (self->HasExternalArrayElements()) {
3794     return i::ExternalArray::cast(self->elements())->external_pointer();
3795   } else {
3796     return NULL;
3797   }
3798 }
3799 
3800 
GetIndexedPropertiesExternalArrayDataType()3801 ExternalArrayType v8::Object::GetIndexedPropertiesExternalArrayDataType() {
3802   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3803   ON_BAILOUT(self->GetIsolate(),
3804              "v8::GetIndexedPropertiesExternalArrayDataType()",
3805              return static_cast<ExternalArrayType>(-1));
3806   switch (self->elements()->map()->instance_type()) {
3807 #define INSTANCE_TYPE_TO_ARRAY_TYPE(Type, type, TYPE, ctype, size)            \
3808     case i::EXTERNAL_##TYPE##_ARRAY_TYPE:                                     \
3809       return kExternal##Type##Array;
3810     TYPED_ARRAYS(INSTANCE_TYPE_TO_ARRAY_TYPE)
3811 #undef INSTANCE_TYPE_TO_ARRAY_TYPE
3812     default:
3813       return static_cast<ExternalArrayType>(-1);
3814   }
3815 }
3816 
3817 
GetIndexedPropertiesExternalArrayDataLength()3818 int v8::Object::GetIndexedPropertiesExternalArrayDataLength() {
3819   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
3820   ON_BAILOUT(self->GetIsolate(),
3821              "v8::GetIndexedPropertiesExternalArrayDataLength()",
3822              return 0);
3823   if (self->HasExternalArrayElements()) {
3824     return i::ExternalArray::cast(self->elements())->length();
3825   } else {
3826     return -1;
3827   }
3828 }
3829 
3830 
IsCallable()3831 bool v8::Object::IsCallable() {
3832   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3833   ON_BAILOUT(isolate, "v8::Object::IsCallable()", return false);
3834   ENTER_V8(isolate);
3835   i::HandleScope scope(isolate);
3836   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
3837   return obj->IsCallable();
3838 }
3839 
3840 
CallAsFunction(v8::Handle<v8::Value> recv,int argc,v8::Handle<v8::Value> argv[])3841 Local<v8::Value> Object::CallAsFunction(v8::Handle<v8::Value> recv,
3842                                         int argc,
3843                                         v8::Handle<v8::Value> argv[]) {
3844   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3845   ON_BAILOUT(isolate, "v8::Object::CallAsFunction()",
3846              return Local<v8::Value>());
3847   LOG_API(isolate, "Object::CallAsFunction");
3848   ENTER_V8(isolate);
3849   i::Logger::TimerEventScope timer_scope(
3850       isolate, i::Logger::TimerEventScope::v8_execute);
3851   i::HandleScope scope(isolate);
3852   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
3853   i::Handle<i::Object> recv_obj = Utils::OpenHandle(*recv);
3854   STATIC_ASSERT(sizeof(v8::Handle<v8::Value>) == sizeof(i::Object**));
3855   i::Handle<i::Object>* args = reinterpret_cast<i::Handle<i::Object>*>(argv);
3856   i::Handle<i::JSFunction> fun = i::Handle<i::JSFunction>();
3857   if (obj->IsJSFunction()) {
3858     fun = i::Handle<i::JSFunction>::cast(obj);
3859   } else {
3860     EXCEPTION_PREAMBLE(isolate);
3861     i::Handle<i::Object> delegate;
3862     has_pending_exception = !i::Execution::TryGetFunctionDelegate(
3863         isolate, obj).ToHandle(&delegate);
3864     EXCEPTION_BAILOUT_CHECK(isolate, Local<Value>());
3865     fun = i::Handle<i::JSFunction>::cast(delegate);
3866     recv_obj = obj;
3867   }
3868   EXCEPTION_PREAMBLE(isolate);
3869   i::Handle<i::Object> returned;
3870   has_pending_exception = !i::Execution::Call(
3871       isolate, fun, recv_obj, argc, args, true).ToHandle(&returned);
3872   EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, Local<Value>());
3873   return Utils::ToLocal(scope.CloseAndEscape(returned));
3874 }
3875 
3876 
CallAsConstructor(int argc,v8::Handle<v8::Value> argv[])3877 Local<v8::Value> Object::CallAsConstructor(int argc,
3878                                            v8::Handle<v8::Value> argv[]) {
3879   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3880   ON_BAILOUT(isolate, "v8::Object::CallAsConstructor()",
3881              return Local<v8::Object>());
3882   LOG_API(isolate, "Object::CallAsConstructor");
3883   ENTER_V8(isolate);
3884   i::Logger::TimerEventScope timer_scope(
3885       isolate, i::Logger::TimerEventScope::v8_execute);
3886   i::HandleScope scope(isolate);
3887   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
3888   STATIC_ASSERT(sizeof(v8::Handle<v8::Value>) == sizeof(i::Object**));
3889   i::Handle<i::Object>* args = reinterpret_cast<i::Handle<i::Object>*>(argv);
3890   if (obj->IsJSFunction()) {
3891     i::Handle<i::JSFunction> fun = i::Handle<i::JSFunction>::cast(obj);
3892     EXCEPTION_PREAMBLE(isolate);
3893     i::Handle<i::Object> returned;
3894     has_pending_exception = !i::Execution::New(
3895         fun, argc, args).ToHandle(&returned);
3896     EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, Local<v8::Object>());
3897     return Utils::ToLocal(scope.CloseAndEscape(
3898         i::Handle<i::JSObject>::cast(returned)));
3899   }
3900   EXCEPTION_PREAMBLE(isolate);
3901   i::Handle<i::Object> delegate;
3902   has_pending_exception = !i::Execution::TryGetConstructorDelegate(
3903       isolate, obj).ToHandle(&delegate);
3904   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::Object>());
3905   if (!delegate->IsUndefined()) {
3906     i::Handle<i::JSFunction> fun = i::Handle<i::JSFunction>::cast(delegate);
3907     EXCEPTION_PREAMBLE(isolate);
3908     i::Handle<i::Object> returned;
3909     has_pending_exception = !i::Execution::Call(
3910         isolate, fun, obj, argc, args).ToHandle(&returned);
3911     EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, Local<v8::Object>());
3912     ASSERT(!delegate->IsUndefined());
3913     return Utils::ToLocal(scope.CloseAndEscape(returned));
3914   }
3915   return Local<v8::Object>();
3916 }
3917 
3918 
New(Isolate * v8_isolate,FunctionCallback callback,Local<Value> data,int length)3919 Local<Function> Function::New(Isolate* v8_isolate,
3920                               FunctionCallback callback,
3921                               Local<Value> data,
3922                               int length) {
3923   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
3924   LOG_API(isolate, "Function::New");
3925   ENTER_V8(isolate);
3926   return FunctionTemplateNew(
3927       isolate, callback, data, Local<Signature>(), length, true)->
3928       GetFunction();
3929 }
3930 
3931 
NewInstance() const3932 Local<v8::Object> Function::NewInstance() const {
3933   return NewInstance(0, NULL);
3934 }
3935 
3936 
NewInstance(int argc,v8::Handle<v8::Value> argv[]) const3937 Local<v8::Object> Function::NewInstance(int argc,
3938                                         v8::Handle<v8::Value> argv[]) const {
3939   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3940   ON_BAILOUT(isolate, "v8::Function::NewInstance()",
3941              return Local<v8::Object>());
3942   LOG_API(isolate, "Function::NewInstance");
3943   ENTER_V8(isolate);
3944   i::Logger::TimerEventScope timer_scope(
3945       isolate, i::Logger::TimerEventScope::v8_execute);
3946   EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
3947   i::Handle<i::JSFunction> function = Utils::OpenHandle(this);
3948   STATIC_ASSERT(sizeof(v8::Handle<v8::Value>) == sizeof(i::Object**));
3949   i::Handle<i::Object>* args = reinterpret_cast<i::Handle<i::Object>*>(argv);
3950   EXCEPTION_PREAMBLE(isolate);
3951   i::Handle<i::Object> returned;
3952   has_pending_exception = !i::Execution::New(
3953       function, argc, args).ToHandle(&returned);
3954   EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, Local<v8::Object>());
3955   return scope.Escape(Utils::ToLocal(i::Handle<i::JSObject>::cast(returned)));
3956 }
3957 
3958 
Call(v8::Handle<v8::Value> recv,int argc,v8::Handle<v8::Value> argv[])3959 Local<v8::Value> Function::Call(v8::Handle<v8::Value> recv, int argc,
3960                                 v8::Handle<v8::Value> argv[]) {
3961   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3962   ON_BAILOUT(isolate, "v8::Function::Call()", return Local<v8::Value>());
3963   LOG_API(isolate, "Function::Call");
3964   ENTER_V8(isolate);
3965   i::Logger::TimerEventScope timer_scope(
3966       isolate, i::Logger::TimerEventScope::v8_execute);
3967   i::HandleScope scope(isolate);
3968   i::Handle<i::JSFunction> fun = Utils::OpenHandle(this);
3969   i::Handle<i::Object> recv_obj = Utils::OpenHandle(*recv);
3970   STATIC_ASSERT(sizeof(v8::Handle<v8::Value>) == sizeof(i::Object**));
3971   i::Handle<i::Object>* args = reinterpret_cast<i::Handle<i::Object>*>(argv);
3972   EXCEPTION_PREAMBLE(isolate);
3973   i::Handle<i::Object> returned;
3974   has_pending_exception = !i::Execution::Call(
3975       isolate, fun, recv_obj, argc, args, true).ToHandle(&returned);
3976   EXCEPTION_BAILOUT_CHECK_DO_CALLBACK(isolate, Local<Object>());
3977   return Utils::ToLocal(scope.CloseAndEscape(returned));
3978 }
3979 
3980 
SetName(v8::Handle<v8::String> name)3981 void Function::SetName(v8::Handle<v8::String> name) {
3982   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
3983   ENTER_V8(isolate);
3984   USE(isolate);
3985   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
3986   func->shared()->set_name(*Utils::OpenHandle(*name));
3987 }
3988 
3989 
GetName() const3990 Handle<Value> Function::GetName() const {
3991   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
3992   return Utils::ToLocal(i::Handle<i::Object>(func->shared()->name(),
3993                                              func->GetIsolate()));
3994 }
3995 
3996 
GetInferredName() const3997 Handle<Value> Function::GetInferredName() const {
3998   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
3999   return Utils::ToLocal(i::Handle<i::Object>(func->shared()->inferred_name(),
4000                                              func->GetIsolate()));
4001 }
4002 
4003 
GetDisplayName() const4004 Handle<Value> Function::GetDisplayName() const {
4005   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
4006   ON_BAILOUT(isolate, "v8::Function::GetDisplayName()",
4007              return ToApiHandle<Primitive>(
4008                  isolate->factory()->undefined_value()));
4009   ENTER_V8(isolate);
4010   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4011   i::Handle<i::String> property_name =
4012       isolate->factory()->InternalizeOneByteString(
4013           STATIC_ASCII_VECTOR("displayName"));
4014   i::LookupResult lookup(isolate);
4015   func->LookupRealNamedProperty(property_name, &lookup);
4016   if (lookup.IsFound()) {
4017     i::Object* value = lookup.GetLazyValue();
4018     if (value && value->IsString()) {
4019       i::String* name = i::String::cast(value);
4020       if (name->length() > 0) return Utils::ToLocal(i::Handle<i::String>(name));
4021     }
4022   }
4023   return ToApiHandle<Primitive>(isolate->factory()->undefined_value());
4024 }
4025 
4026 
GetScriptOrigin() const4027 ScriptOrigin Function::GetScriptOrigin() const {
4028   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4029   if (func->shared()->script()->IsScript()) {
4030     i::Handle<i::Script> script(i::Script::cast(func->shared()->script()));
4031     i::Handle<i::Object> scriptName = i::Script::GetNameOrSourceURL(script);
4032     v8::Isolate* isolate = reinterpret_cast<v8::Isolate*>(func->GetIsolate());
4033     v8::ScriptOrigin origin(
4034         Utils::ToLocal(scriptName),
4035         v8::Integer::New(isolate, script->line_offset()->value()),
4036         v8::Integer::New(isolate, script->column_offset()->value()));
4037     return origin;
4038   }
4039   return v8::ScriptOrigin(Handle<Value>());
4040 }
4041 
4042 
4043 const int Function::kLineOffsetNotFound = -1;
4044 
4045 
GetScriptLineNumber() const4046 int Function::GetScriptLineNumber() const {
4047   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4048   if (func->shared()->script()->IsScript()) {
4049     i::Handle<i::Script> script(i::Script::cast(func->shared()->script()));
4050     return i::Script::GetLineNumber(script, func->shared()->start_position());
4051   }
4052   return kLineOffsetNotFound;
4053 }
4054 
4055 
GetScriptColumnNumber() const4056 int Function::GetScriptColumnNumber() const {
4057   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4058   if (func->shared()->script()->IsScript()) {
4059     i::Handle<i::Script> script(i::Script::cast(func->shared()->script()));
4060     return i::Script::GetColumnNumber(script, func->shared()->start_position());
4061   }
4062   return kLineOffsetNotFound;
4063 }
4064 
4065 
IsBuiltin() const4066 bool Function::IsBuiltin() const {
4067   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4068   return func->IsBuiltin();
4069 }
4070 
4071 
ScriptId() const4072 int Function::ScriptId() const {
4073   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4074   if (!func->shared()->script()->IsScript()) {
4075     return v8::UnboundScript::kNoScriptId;
4076   }
4077   i::Handle<i::Script> script(i::Script::cast(func->shared()->script()));
4078   return script->id()->value();
4079 }
4080 
4081 
GetBoundFunction() const4082 Local<v8::Value> Function::GetBoundFunction() const {
4083   i::Handle<i::JSFunction> func = Utils::OpenHandle(this);
4084   if (!func->shared()->bound()) {
4085     return v8::Undefined(reinterpret_cast<v8::Isolate*>(func->GetIsolate()));
4086   }
4087   i::Handle<i::FixedArray> bound_args = i::Handle<i::FixedArray>(
4088       i::FixedArray::cast(func->function_bindings()));
4089   i::Handle<i::Object> original(
4090       bound_args->get(i::JSFunction::kBoundFunctionIndex),
4091       func->GetIsolate());
4092   return Utils::ToLocal(i::Handle<i::JSFunction>::cast(original));
4093 }
4094 
4095 
Length() const4096 int String::Length() const {
4097   i::Handle<i::String> str = Utils::OpenHandle(this);
4098   return str->length();
4099 }
4100 
4101 
IsOneByte() const4102 bool String::IsOneByte() const {
4103   i::Handle<i::String> str = Utils::OpenHandle(this);
4104   return str->HasOnlyOneByteChars();
4105 }
4106 
4107 
4108 // Helpers for ContainsOnlyOneByteHelper
4109 template<size_t size> struct OneByteMask;
4110 template<> struct OneByteMask<4> {
4111   static const uint32_t value = 0xFF00FF00;
4112 };
4113 template<> struct OneByteMask<8> {
4114   static const uint64_t value = V8_2PART_UINT64_C(0xFF00FF00, FF00FF00);
4115 };
4116 static const uintptr_t kOneByteMask = OneByteMask<sizeof(uintptr_t)>::value;
4117 static const uintptr_t kAlignmentMask = sizeof(uintptr_t) - 1;
Unaligned(const uint16_t * chars)4118 static inline bool Unaligned(const uint16_t* chars) {
4119   return reinterpret_cast<const uintptr_t>(chars) & kAlignmentMask;
4120 }
4121 
4122 
Align(const uint16_t * chars)4123 static inline const uint16_t* Align(const uint16_t* chars) {
4124   return reinterpret_cast<uint16_t*>(
4125       reinterpret_cast<uintptr_t>(chars) & ~kAlignmentMask);
4126 }
4127 
4128 class ContainsOnlyOneByteHelper {
4129  public:
ContainsOnlyOneByteHelper()4130   ContainsOnlyOneByteHelper() : is_one_byte_(true) {}
Check(i::String * string)4131   bool Check(i::String* string) {
4132     i::ConsString* cons_string = i::String::VisitFlat(this, string, 0);
4133     if (cons_string == NULL) return is_one_byte_;
4134     return CheckCons(cons_string);
4135   }
VisitOneByteString(const uint8_t * chars,int length)4136   void VisitOneByteString(const uint8_t* chars, int length) {
4137     // Nothing to do.
4138   }
VisitTwoByteString(const uint16_t * chars,int length)4139   void VisitTwoByteString(const uint16_t* chars, int length) {
4140     // Accumulated bits.
4141     uintptr_t acc = 0;
4142     // Align to uintptr_t.
4143     const uint16_t* end = chars + length;
4144     while (Unaligned(chars) && chars != end) {
4145       acc |= *chars++;
4146     }
4147     // Read word aligned in blocks,
4148     // checking the return value at the end of each block.
4149     const uint16_t* aligned_end = Align(end);
4150     const int increment = sizeof(uintptr_t)/sizeof(uint16_t);
4151     const int inner_loops = 16;
4152     while (chars + inner_loops*increment < aligned_end) {
4153       for (int i = 0; i < inner_loops; i++) {
4154         acc |= *reinterpret_cast<const uintptr_t*>(chars);
4155         chars += increment;
4156       }
4157       // Check for early return.
4158       if ((acc & kOneByteMask) != 0) {
4159         is_one_byte_ = false;
4160         return;
4161       }
4162     }
4163     // Read the rest.
4164     while (chars != end) {
4165       acc |= *chars++;
4166     }
4167     // Check result.
4168     if ((acc & kOneByteMask) != 0) is_one_byte_ = false;
4169   }
4170 
4171  private:
CheckCons(i::ConsString * cons_string)4172   bool CheckCons(i::ConsString* cons_string) {
4173     while (true) {
4174       // Check left side if flat.
4175       i::String* left = cons_string->first();
4176       i::ConsString* left_as_cons =
4177           i::String::VisitFlat(this, left, 0);
4178       if (!is_one_byte_) return false;
4179       // Check right side if flat.
4180       i::String* right = cons_string->second();
4181       i::ConsString* right_as_cons =
4182           i::String::VisitFlat(this, right, 0);
4183       if (!is_one_byte_) return false;
4184       // Standard recurse/iterate trick.
4185       if (left_as_cons != NULL && right_as_cons != NULL) {
4186         if (left->length() < right->length()) {
4187           CheckCons(left_as_cons);
4188           cons_string = right_as_cons;
4189         } else {
4190           CheckCons(right_as_cons);
4191           cons_string = left_as_cons;
4192         }
4193         // Check fast return.
4194         if (!is_one_byte_) return false;
4195         continue;
4196       }
4197       // Descend left in place.
4198       if (left_as_cons != NULL) {
4199         cons_string = left_as_cons;
4200         continue;
4201       }
4202       // Descend right in place.
4203       if (right_as_cons != NULL) {
4204         cons_string = right_as_cons;
4205         continue;
4206       }
4207       // Terminate.
4208       break;
4209     }
4210     return is_one_byte_;
4211   }
4212   bool is_one_byte_;
4213   DISALLOW_COPY_AND_ASSIGN(ContainsOnlyOneByteHelper);
4214 };
4215 
4216 
ContainsOnlyOneByte() const4217 bool String::ContainsOnlyOneByte() const {
4218   i::Handle<i::String> str = Utils::OpenHandle(this);
4219   if (str->HasOnlyOneByteChars()) return true;
4220   ContainsOnlyOneByteHelper helper;
4221   return helper.Check(*str);
4222 }
4223 
4224 
4225 class Utf8LengthHelper : public i::AllStatic {
4226  public:
4227   enum State {
4228     kEndsWithLeadingSurrogate = 1 << 0,
4229     kStartsWithTrailingSurrogate = 1 << 1,
4230     kLeftmostEdgeIsCalculated = 1 << 2,
4231     kRightmostEdgeIsCalculated = 1 << 3,
4232     kLeftmostEdgeIsSurrogate = 1 << 4,
4233     kRightmostEdgeIsSurrogate = 1 << 5
4234   };
4235 
4236   static const uint8_t kInitialState = 0;
4237 
EndsWithSurrogate(uint8_t state)4238   static inline bool EndsWithSurrogate(uint8_t state) {
4239     return state & kEndsWithLeadingSurrogate;
4240   }
4241 
StartsWithSurrogate(uint8_t state)4242   static inline bool StartsWithSurrogate(uint8_t state) {
4243     return state & kStartsWithTrailingSurrogate;
4244   }
4245 
4246   class Visitor {
4247    public:
Visitor()4248     inline explicit Visitor()
4249         : utf8_length_(0),
4250           state_(kInitialState) {}
4251 
VisitOneByteString(const uint8_t * chars,int length)4252     void VisitOneByteString(const uint8_t* chars, int length) {
4253       int utf8_length = 0;
4254       // Add in length 1 for each non-ASCII character.
4255       for (int i = 0; i < length; i++) {
4256         utf8_length += *chars++ >> 7;
4257       }
4258       // Add in length 1 for each character.
4259       utf8_length_ = utf8_length + length;
4260       state_ = kInitialState;
4261     }
4262 
VisitTwoByteString(const uint16_t * chars,int length)4263     void VisitTwoByteString(const uint16_t* chars, int length) {
4264       int utf8_length = 0;
4265       int last_character = unibrow::Utf16::kNoPreviousCharacter;
4266       for (int i = 0; i < length; i++) {
4267         uint16_t c = chars[i];
4268         utf8_length += unibrow::Utf8::Length(c, last_character);
4269         last_character = c;
4270       }
4271       utf8_length_ = utf8_length;
4272       uint8_t state = 0;
4273       if (unibrow::Utf16::IsTrailSurrogate(chars[0])) {
4274         state |= kStartsWithTrailingSurrogate;
4275       }
4276       if (unibrow::Utf16::IsLeadSurrogate(chars[length-1])) {
4277         state |= kEndsWithLeadingSurrogate;
4278       }
4279       state_ = state;
4280     }
4281 
VisitFlat(i::String * string,int * length,uint8_t * state)4282     static i::ConsString* VisitFlat(i::String* string,
4283                                     int* length,
4284                                     uint8_t* state) {
4285       Visitor visitor;
4286       i::ConsString* cons_string = i::String::VisitFlat(&visitor, string);
4287       *length = visitor.utf8_length_;
4288       *state = visitor.state_;
4289       return cons_string;
4290     }
4291 
4292    private:
4293     int utf8_length_;
4294     uint8_t state_;
4295     DISALLOW_COPY_AND_ASSIGN(Visitor);
4296   };
4297 
MergeLeafLeft(int * length,uint8_t * state,uint8_t leaf_state)4298   static inline void MergeLeafLeft(int* length,
4299                                    uint8_t* state,
4300                                    uint8_t leaf_state) {
4301     bool edge_surrogate = StartsWithSurrogate(leaf_state);
4302     if (!(*state & kLeftmostEdgeIsCalculated)) {
4303       ASSERT(!(*state & kLeftmostEdgeIsSurrogate));
4304       *state |= kLeftmostEdgeIsCalculated
4305           | (edge_surrogate ? kLeftmostEdgeIsSurrogate : 0);
4306     } else if (EndsWithSurrogate(*state) && edge_surrogate) {
4307       *length -= unibrow::Utf8::kBytesSavedByCombiningSurrogates;
4308     }
4309     if (EndsWithSurrogate(leaf_state)) {
4310       *state |= kEndsWithLeadingSurrogate;
4311     } else {
4312       *state &= ~kEndsWithLeadingSurrogate;
4313     }
4314   }
4315 
MergeLeafRight(int * length,uint8_t * state,uint8_t leaf_state)4316   static inline void MergeLeafRight(int* length,
4317                                     uint8_t* state,
4318                                     uint8_t leaf_state) {
4319     bool edge_surrogate = EndsWithSurrogate(leaf_state);
4320     if (!(*state & kRightmostEdgeIsCalculated)) {
4321       ASSERT(!(*state & kRightmostEdgeIsSurrogate));
4322       *state |= (kRightmostEdgeIsCalculated
4323                  | (edge_surrogate ? kRightmostEdgeIsSurrogate : 0));
4324     } else if (edge_surrogate && StartsWithSurrogate(*state)) {
4325       *length -= unibrow::Utf8::kBytesSavedByCombiningSurrogates;
4326     }
4327     if (StartsWithSurrogate(leaf_state)) {
4328       *state |= kStartsWithTrailingSurrogate;
4329     } else {
4330       *state &= ~kStartsWithTrailingSurrogate;
4331     }
4332   }
4333 
MergeTerminal(int * length,uint8_t state,uint8_t * state_out)4334   static inline void MergeTerminal(int* length,
4335                                    uint8_t state,
4336                                    uint8_t* state_out) {
4337     ASSERT((state & kLeftmostEdgeIsCalculated) &&
4338            (state & kRightmostEdgeIsCalculated));
4339     if (EndsWithSurrogate(state) && StartsWithSurrogate(state)) {
4340       *length -= unibrow::Utf8::kBytesSavedByCombiningSurrogates;
4341     }
4342     *state_out = kInitialState |
4343         (state & kLeftmostEdgeIsSurrogate ? kStartsWithTrailingSurrogate : 0) |
4344         (state & kRightmostEdgeIsSurrogate ? kEndsWithLeadingSurrogate : 0);
4345   }
4346 
Calculate(i::ConsString * current,uint8_t * state_out)4347   static int Calculate(i::ConsString* current, uint8_t* state_out) {
4348     using namespace internal;
4349     int total_length = 0;
4350     uint8_t state = kInitialState;
4351     while (true) {
4352       i::String* left = current->first();
4353       i::String* right = current->second();
4354       uint8_t right_leaf_state;
4355       uint8_t left_leaf_state;
4356       int leaf_length;
4357       ConsString* left_as_cons =
4358           Visitor::VisitFlat(left, &leaf_length, &left_leaf_state);
4359       if (left_as_cons == NULL) {
4360         total_length += leaf_length;
4361         MergeLeafLeft(&total_length, &state, left_leaf_state);
4362       }
4363       ConsString* right_as_cons =
4364           Visitor::VisitFlat(right, &leaf_length, &right_leaf_state);
4365       if (right_as_cons == NULL) {
4366         total_length += leaf_length;
4367         MergeLeafRight(&total_length, &state, right_leaf_state);
4368         if (left_as_cons != NULL) {
4369           // 1 Leaf node. Descend in place.
4370           current = left_as_cons;
4371           continue;
4372         } else {
4373           // Terminal node.
4374           MergeTerminal(&total_length, state, state_out);
4375           return total_length;
4376         }
4377       } else if (left_as_cons == NULL) {
4378         // 1 Leaf node. Descend in place.
4379         current = right_as_cons;
4380         continue;
4381       }
4382       // Both strings are ConsStrings.
4383       // Recurse on smallest.
4384       if (left->length() < right->length()) {
4385         total_length += Calculate(left_as_cons, &left_leaf_state);
4386         MergeLeafLeft(&total_length, &state, left_leaf_state);
4387         current = right_as_cons;
4388       } else {
4389         total_length += Calculate(right_as_cons, &right_leaf_state);
4390         MergeLeafRight(&total_length, &state, right_leaf_state);
4391         current = left_as_cons;
4392       }
4393     }
4394     UNREACHABLE();
4395     return 0;
4396   }
4397 
Calculate(i::ConsString * current)4398   static inline int Calculate(i::ConsString* current) {
4399     uint8_t state = kInitialState;
4400     return Calculate(current, &state);
4401   }
4402 
4403  private:
4404   DISALLOW_IMPLICIT_CONSTRUCTORS(Utf8LengthHelper);
4405 };
4406 
4407 
Utf8Length(i::String * str,i::Isolate * isolate)4408 static int Utf8Length(i::String* str, i::Isolate* isolate) {
4409   int length = str->length();
4410   if (length == 0) return 0;
4411   uint8_t state;
4412   i::ConsString* cons_string =
4413       Utf8LengthHelper::Visitor::VisitFlat(str, &length, &state);
4414   if (cons_string == NULL) return length;
4415   return Utf8LengthHelper::Calculate(cons_string);
4416 }
4417 
4418 
Utf8Length() const4419 int String::Utf8Length() const {
4420   i::Handle<i::String> str = Utils::OpenHandle(this);
4421   i::Isolate* isolate = str->GetIsolate();
4422   return v8::Utf8Length(*str, isolate);
4423 }
4424 
4425 
4426 class Utf8WriterVisitor {
4427  public:
Utf8WriterVisitor(char * buffer,int capacity,bool skip_capacity_check,bool replace_invalid_utf8)4428   Utf8WriterVisitor(
4429       char* buffer,
4430       int capacity,
4431       bool skip_capacity_check,
4432       bool replace_invalid_utf8)
4433     : early_termination_(false),
4434       last_character_(unibrow::Utf16::kNoPreviousCharacter),
4435       buffer_(buffer),
4436       start_(buffer),
4437       capacity_(capacity),
4438       skip_capacity_check_(capacity == -1 || skip_capacity_check),
4439       replace_invalid_utf8_(replace_invalid_utf8),
4440       utf16_chars_read_(0) {
4441   }
4442 
WriteEndCharacter(uint16_t character,int last_character,int remaining,char * const buffer,bool replace_invalid_utf8)4443   static int WriteEndCharacter(uint16_t character,
4444                                int last_character,
4445                                int remaining,
4446                                char* const buffer,
4447                                bool replace_invalid_utf8) {
4448     using namespace unibrow;
4449     ASSERT(remaining > 0);
4450     // We can't use a local buffer here because Encode needs to modify
4451     // previous characters in the stream.  We know, however, that
4452     // exactly one character will be advanced.
4453     if (Utf16::IsSurrogatePair(last_character, character)) {
4454       int written = Utf8::Encode(buffer,
4455                                  character,
4456                                  last_character,
4457                                  replace_invalid_utf8);
4458       ASSERT(written == 1);
4459       return written;
4460     }
4461     // Use a scratch buffer to check the required characters.
4462     char temp_buffer[Utf8::kMaxEncodedSize];
4463     // Can't encode using last_character as gcc has array bounds issues.
4464     int written = Utf8::Encode(temp_buffer,
4465                                character,
4466                                Utf16::kNoPreviousCharacter,
4467                                replace_invalid_utf8);
4468     // Won't fit.
4469     if (written > remaining) return 0;
4470     // Copy over the character from temp_buffer.
4471     for (int j = 0; j < written; j++) {
4472       buffer[j] = temp_buffer[j];
4473     }
4474     return written;
4475   }
4476 
4477   // Visit writes out a group of code units (chars) of a v8::String to the
4478   // internal buffer_. This is done in two phases. The first phase calculates a
4479   // pesimistic estimate (writable_length) on how many code units can be safely
4480   // written without exceeding the buffer capacity and without writing the last
4481   // code unit (it could be a lead surrogate). The estimated number of code
4482   // units is then written out in one go, and the reported byte usage is used
4483   // to correct the estimate. This is repeated until the estimate becomes <= 0
4484   // or all code units have been written out. The second phase writes out code
4485   // units until the buffer capacity is reached, would be exceeded by the next
4486   // unit, or all units have been written out.
4487   template<typename Char>
Visit(const Char * chars,const int length)4488   void Visit(const Char* chars, const int length) {
4489     using namespace unibrow;
4490     ASSERT(!early_termination_);
4491     if (length == 0) return;
4492     // Copy state to stack.
4493     char* buffer = buffer_;
4494     int last_character =
4495         sizeof(Char) == 1 ? Utf16::kNoPreviousCharacter : last_character_;
4496     int i = 0;
4497     // Do a fast loop where there is no exit capacity check.
4498     while (true) {
4499       int fast_length;
4500       if (skip_capacity_check_) {
4501         fast_length = length;
4502       } else {
4503         int remaining_capacity = capacity_ - static_cast<int>(buffer - start_);
4504         // Need enough space to write everything but one character.
4505         STATIC_ASSERT(Utf16::kMaxExtraUtf8BytesForOneUtf16CodeUnit == 3);
4506         int max_size_per_char =  sizeof(Char) == 1 ? 2 : 3;
4507         int writable_length =
4508             (remaining_capacity - max_size_per_char)/max_size_per_char;
4509         // Need to drop into slow loop.
4510         if (writable_length <= 0) break;
4511         fast_length = i + writable_length;
4512         if (fast_length > length) fast_length = length;
4513       }
4514       // Write the characters to the stream.
4515       if (sizeof(Char) == 1) {
4516         for (; i < fast_length; i++) {
4517           buffer +=
4518               Utf8::EncodeOneByte(buffer, static_cast<uint8_t>(*chars++));
4519           ASSERT(capacity_ == -1 || (buffer - start_) <= capacity_);
4520         }
4521       } else {
4522         for (; i < fast_length; i++) {
4523           uint16_t character = *chars++;
4524           buffer += Utf8::Encode(buffer,
4525                                  character,
4526                                  last_character,
4527                                  replace_invalid_utf8_);
4528           last_character = character;
4529           ASSERT(capacity_ == -1 || (buffer - start_) <= capacity_);
4530         }
4531       }
4532       // Array is fully written. Exit.
4533       if (fast_length == length) {
4534         // Write state back out to object.
4535         last_character_ = last_character;
4536         buffer_ = buffer;
4537         utf16_chars_read_ += length;
4538         return;
4539       }
4540     }
4541     ASSERT(!skip_capacity_check_);
4542     // Slow loop. Must check capacity on each iteration.
4543     int remaining_capacity = capacity_ - static_cast<int>(buffer - start_);
4544     ASSERT(remaining_capacity >= 0);
4545     for (; i < length && remaining_capacity > 0; i++) {
4546       uint16_t character = *chars++;
4547       // remaining_capacity is <= 3 bytes at this point, so we do not write out
4548       // an umatched lead surrogate.
4549       if (replace_invalid_utf8_ && Utf16::IsLeadSurrogate(character)) {
4550         early_termination_ = true;
4551         break;
4552       }
4553       int written = WriteEndCharacter(character,
4554                                       last_character,
4555                                       remaining_capacity,
4556                                       buffer,
4557                                       replace_invalid_utf8_);
4558       if (written == 0) {
4559         early_termination_ = true;
4560         break;
4561       }
4562       buffer += written;
4563       remaining_capacity -= written;
4564       last_character = character;
4565     }
4566     // Write state back out to object.
4567     last_character_ = last_character;
4568     buffer_ = buffer;
4569     utf16_chars_read_ += i;
4570   }
4571 
IsDone()4572   inline bool IsDone() {
4573     return early_termination_;
4574   }
4575 
VisitOneByteString(const uint8_t * chars,int length)4576   inline void VisitOneByteString(const uint8_t* chars, int length) {
4577     Visit(chars, length);
4578   }
4579 
VisitTwoByteString(const uint16_t * chars,int length)4580   inline void VisitTwoByteString(const uint16_t* chars, int length) {
4581     Visit(chars, length);
4582   }
4583 
CompleteWrite(bool write_null,int * utf16_chars_read_out)4584   int CompleteWrite(bool write_null, int* utf16_chars_read_out) {
4585     // Write out number of utf16 characters written to the stream.
4586     if (utf16_chars_read_out != NULL) {
4587       *utf16_chars_read_out = utf16_chars_read_;
4588     }
4589     // Only null terminate if all of the string was written and there's space.
4590     if (write_null &&
4591         !early_termination_ &&
4592         (capacity_ == -1 || (buffer_ - start_) < capacity_)) {
4593       *buffer_++ = '\0';
4594     }
4595     return static_cast<int>(buffer_ - start_);
4596   }
4597 
4598  private:
4599   bool early_termination_;
4600   int last_character_;
4601   char* buffer_;
4602   char* const start_;
4603   int capacity_;
4604   bool const skip_capacity_check_;
4605   bool const replace_invalid_utf8_;
4606   int utf16_chars_read_;
4607   DISALLOW_IMPLICIT_CONSTRUCTORS(Utf8WriterVisitor);
4608 };
4609 
4610 
RecursivelySerializeToUtf8(i::String * current,Utf8WriterVisitor * writer,int recursion_budget)4611 static bool RecursivelySerializeToUtf8(i::String* current,
4612                                        Utf8WriterVisitor* writer,
4613                                        int recursion_budget) {
4614   while (!writer->IsDone()) {
4615     i::ConsString* cons_string = i::String::VisitFlat(writer, current);
4616     if (cons_string == NULL) return true;  // Leaf node.
4617     if (recursion_budget <= 0) return false;
4618     // Must write the left branch first.
4619     i::String* first = cons_string->first();
4620     bool success = RecursivelySerializeToUtf8(first,
4621                                               writer,
4622                                               recursion_budget - 1);
4623     if (!success) return false;
4624     // Inline tail recurse for right branch.
4625     current = cons_string->second();
4626   }
4627   return true;
4628 }
4629 
4630 
WriteUtf8(char * buffer,int capacity,int * nchars_ref,int options) const4631 int String::WriteUtf8(char* buffer,
4632                       int capacity,
4633                       int* nchars_ref,
4634                       int options) const {
4635   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
4636   LOG_API(isolate, "String::WriteUtf8");
4637   ENTER_V8(isolate);
4638   i::Handle<i::String> str = Utils::OpenHandle(this);
4639   if (options & HINT_MANY_WRITES_EXPECTED) {
4640     str = i::String::Flatten(str);  // Flatten the string for efficiency.
4641   }
4642   const int string_length = str->length();
4643   bool write_null = !(options & NO_NULL_TERMINATION);
4644   bool replace_invalid_utf8 = (options & REPLACE_INVALID_UTF8);
4645   int max16BitCodeUnitSize = unibrow::Utf8::kMax16BitCodeUnitSize;
4646   // First check if we can just write the string without checking capacity.
4647   if (capacity == -1 || capacity / max16BitCodeUnitSize >= string_length) {
4648     Utf8WriterVisitor writer(buffer, capacity, true, replace_invalid_utf8);
4649     const int kMaxRecursion = 100;
4650     bool success = RecursivelySerializeToUtf8(*str, &writer, kMaxRecursion);
4651     if (success) return writer.CompleteWrite(write_null, nchars_ref);
4652   } else if (capacity >= string_length) {
4653     // First check that the buffer is large enough.
4654     int utf8_bytes = v8::Utf8Length(*str, str->GetIsolate());
4655     if (utf8_bytes <= capacity) {
4656       // ASCII fast path.
4657       if (utf8_bytes == string_length) {
4658         WriteOneByte(reinterpret_cast<uint8_t*>(buffer), 0, capacity, options);
4659         if (nchars_ref != NULL) *nchars_ref = string_length;
4660         if (write_null && (utf8_bytes+1 <= capacity)) {
4661           return string_length + 1;
4662         }
4663         return string_length;
4664       }
4665       if (write_null && (utf8_bytes+1 > capacity)) {
4666         options |= NO_NULL_TERMINATION;
4667       }
4668       // Recurse once without a capacity limit.
4669       // This will get into the first branch above.
4670       // TODO(dcarney) Check max left rec. in Utf8Length and fall through.
4671       return WriteUtf8(buffer, -1, nchars_ref, options);
4672     }
4673   }
4674   // Recursive slow path can potentially be unreasonable slow. Flatten.
4675   str = i::String::Flatten(str);
4676   Utf8WriterVisitor writer(buffer, capacity, false, replace_invalid_utf8);
4677   i::String::VisitFlat(&writer, *str);
4678   return writer.CompleteWrite(write_null, nchars_ref);
4679 }
4680 
4681 
4682 template<typename CharType>
WriteHelper(const String * string,CharType * buffer,int start,int length,int options)4683 static inline int WriteHelper(const String* string,
4684                               CharType* buffer,
4685                               int start,
4686                               int length,
4687                               int options) {
4688   i::Isolate* isolate = Utils::OpenHandle(string)->GetIsolate();
4689   LOG_API(isolate, "String::Write");
4690   ENTER_V8(isolate);
4691   ASSERT(start >= 0 && length >= -1);
4692   i::Handle<i::String> str = Utils::OpenHandle(string);
4693   isolate->string_tracker()->RecordWrite(str);
4694   if (options & String::HINT_MANY_WRITES_EXPECTED) {
4695     // Flatten the string for efficiency.  This applies whether we are
4696     // using StringCharacterStream or Get(i) to access the characters.
4697     str = i::String::Flatten(str);
4698   }
4699   int end = start + length;
4700   if ((length == -1) || (length > str->length() - start) )
4701     end = str->length();
4702   if (end < 0) return 0;
4703   i::String::WriteToFlat(*str, buffer, start, end);
4704   if (!(options & String::NO_NULL_TERMINATION) &&
4705       (length == -1 || end - start < length)) {
4706     buffer[end - start] = '\0';
4707   }
4708   return end - start;
4709 }
4710 
4711 
WriteOneByte(uint8_t * buffer,int start,int length,int options) const4712 int String::WriteOneByte(uint8_t* buffer,
4713                          int start,
4714                          int length,
4715                          int options) const {
4716   return WriteHelper(this, buffer, start, length, options);
4717 }
4718 
4719 
Write(uint16_t * buffer,int start,int length,int options) const4720 int String::Write(uint16_t* buffer,
4721                   int start,
4722                   int length,
4723                   int options) const {
4724   return WriteHelper(this, buffer, start, length, options);
4725 }
4726 
4727 
IsExternal() const4728 bool v8::String::IsExternal() const {
4729   i::Handle<i::String> str = Utils::OpenHandle(this);
4730   EnsureInitializedForIsolate(str->GetIsolate(), "v8::String::IsExternal()");
4731   return i::StringShape(*str).IsExternalTwoByte();
4732 }
4733 
4734 
IsExternalAscii() const4735 bool v8::String::IsExternalAscii() const {
4736   i::Handle<i::String> str = Utils::OpenHandle(this);
4737   return i::StringShape(*str).IsExternalAscii();
4738 }
4739 
4740 
VerifyExternalStringResource(v8::String::ExternalStringResource * value) const4741 void v8::String::VerifyExternalStringResource(
4742     v8::String::ExternalStringResource* value) const {
4743   i::Handle<i::String> str = Utils::OpenHandle(this);
4744   const v8::String::ExternalStringResource* expected;
4745   if (i::StringShape(*str).IsExternalTwoByte()) {
4746     const void* resource =
4747         i::Handle<i::ExternalTwoByteString>::cast(str)->resource();
4748     expected = reinterpret_cast<const ExternalStringResource*>(resource);
4749   } else {
4750     expected = NULL;
4751   }
4752   CHECK_EQ(expected, value);
4753 }
4754 
VerifyExternalStringResourceBase(v8::String::ExternalStringResourceBase * value,Encoding encoding) const4755 void v8::String::VerifyExternalStringResourceBase(
4756     v8::String::ExternalStringResourceBase* value, Encoding encoding) const {
4757   i::Handle<i::String> str = Utils::OpenHandle(this);
4758   const v8::String::ExternalStringResourceBase* expected;
4759   Encoding expectedEncoding;
4760   if (i::StringShape(*str).IsExternalAscii()) {
4761     const void* resource =
4762         i::Handle<i::ExternalAsciiString>::cast(str)->resource();
4763     expected = reinterpret_cast<const ExternalStringResourceBase*>(resource);
4764     expectedEncoding = ASCII_ENCODING;
4765   } else if (i::StringShape(*str).IsExternalTwoByte()) {
4766     const void* resource =
4767         i::Handle<i::ExternalTwoByteString>::cast(str)->resource();
4768     expected = reinterpret_cast<const ExternalStringResourceBase*>(resource);
4769     expectedEncoding = TWO_BYTE_ENCODING;
4770   } else {
4771     expected = NULL;
4772     expectedEncoding = str->IsOneByteRepresentation() ? ASCII_ENCODING
4773         : TWO_BYTE_ENCODING;
4774   }
4775   CHECK_EQ(expected, value);
4776   CHECK_EQ(expectedEncoding, encoding);
4777 }
4778 
4779 const v8::String::ExternalAsciiStringResource*
GetExternalAsciiStringResource() const4780 v8::String::GetExternalAsciiStringResource() const {
4781   i::Handle<i::String> str = Utils::OpenHandle(this);
4782   if (i::StringShape(*str).IsExternalAscii()) {
4783     const void* resource =
4784         i::Handle<i::ExternalAsciiString>::cast(str)->resource();
4785     return reinterpret_cast<const ExternalAsciiStringResource*>(resource);
4786   } else {
4787     return NULL;
4788   }
4789 }
4790 
4791 
Name() const4792 Local<Value> Symbol::Name() const {
4793   i::Handle<i::Symbol> sym = Utils::OpenHandle(this);
4794   i::Handle<i::Object> name(sym->name(), sym->GetIsolate());
4795   return Utils::ToLocal(name);
4796 }
4797 
4798 
Name() const4799 Local<Value> Private::Name() const {
4800   return reinterpret_cast<const Symbol*>(this)->Name();
4801 }
4802 
4803 
Value() const4804 double Number::Value() const {
4805   i::Handle<i::Object> obj = Utils::OpenHandle(this);
4806   return obj->Number();
4807 }
4808 
4809 
Value() const4810 bool Boolean::Value() const {
4811   i::Handle<i::Object> obj = Utils::OpenHandle(this);
4812   return obj->IsTrue();
4813 }
4814 
4815 
Value() const4816 int64_t Integer::Value() const {
4817   i::Handle<i::Object> obj = Utils::OpenHandle(this);
4818   if (obj->IsSmi()) {
4819     return i::Smi::cast(*obj)->value();
4820   } else {
4821     return static_cast<int64_t>(obj->Number());
4822   }
4823 }
4824 
4825 
Value() const4826 int32_t Int32::Value() const {
4827   i::Handle<i::Object> obj = Utils::OpenHandle(this);
4828   if (obj->IsSmi()) {
4829     return i::Smi::cast(*obj)->value();
4830   } else {
4831     return static_cast<int32_t>(obj->Number());
4832   }
4833 }
4834 
4835 
Value() const4836 uint32_t Uint32::Value() const {
4837   i::Handle<i::Object> obj = Utils::OpenHandle(this);
4838   if (obj->IsSmi()) {
4839     return i::Smi::cast(*obj)->value();
4840   } else {
4841     return static_cast<uint32_t>(obj->Number());
4842   }
4843 }
4844 
4845 
InternalFieldCount()4846 int v8::Object::InternalFieldCount() {
4847   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
4848   return obj->GetInternalFieldCount();
4849 }
4850 
4851 
InternalFieldOK(i::Handle<i::JSObject> obj,int index,const char * location)4852 static bool InternalFieldOK(i::Handle<i::JSObject> obj,
4853                             int index,
4854                             const char* location) {
4855   return Utils::ApiCheck(index < obj->GetInternalFieldCount(),
4856                          location,
4857                          "Internal field out of bounds");
4858 }
4859 
4860 
SlowGetInternalField(int index)4861 Local<Value> v8::Object::SlowGetInternalField(int index) {
4862   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
4863   const char* location = "v8::Object::GetInternalField()";
4864   if (!InternalFieldOK(obj, index, location)) return Local<Value>();
4865   i::Handle<i::Object> value(obj->GetInternalField(index), obj->GetIsolate());
4866   return Utils::ToLocal(value);
4867 }
4868 
4869 
SetInternalField(int index,v8::Handle<Value> value)4870 void v8::Object::SetInternalField(int index, v8::Handle<Value> value) {
4871   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
4872   const char* location = "v8::Object::SetInternalField()";
4873   if (!InternalFieldOK(obj, index, location)) return;
4874   i::Handle<i::Object> val = Utils::OpenHandle(*value);
4875   obj->SetInternalField(index, *val);
4876   ASSERT_EQ(value, GetInternalField(index));
4877 }
4878 
4879 
SlowGetAlignedPointerFromInternalField(int index)4880 void* v8::Object::SlowGetAlignedPointerFromInternalField(int index) {
4881   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
4882   const char* location = "v8::Object::GetAlignedPointerFromInternalField()";
4883   if (!InternalFieldOK(obj, index, location)) return NULL;
4884   return DecodeSmiToAligned(obj->GetInternalField(index), location);
4885 }
4886 
4887 
SetAlignedPointerInInternalField(int index,void * value)4888 void v8::Object::SetAlignedPointerInInternalField(int index, void* value) {
4889   i::Handle<i::JSObject> obj = Utils::OpenHandle(this);
4890   const char* location = "v8::Object::SetAlignedPointerInInternalField()";
4891   if (!InternalFieldOK(obj, index, location)) return;
4892   obj->SetInternalField(index, EncodeAlignedAsSmi(value, location));
4893   ASSERT_EQ(value, GetAlignedPointerFromInternalField(index));
4894 }
4895 
4896 
ExternalValue(i::Object * obj)4897 static void* ExternalValue(i::Object* obj) {
4898   // Obscure semantics for undefined, but somehow checked in our unit tests...
4899   if (obj->IsUndefined()) return NULL;
4900   i::Object* foreign = i::JSObject::cast(obj)->GetInternalField(0);
4901   return i::Foreign::cast(foreign)->foreign_address();
4902 }
4903 
4904 
4905 // --- E n v i r o n m e n t ---
4906 
4907 
InitializePlatform(Platform * platform)4908 void v8::V8::InitializePlatform(Platform* platform) {
4909 #ifdef V8_USE_DEFAULT_PLATFORM
4910   FATAL("Can't override v8::Platform when using default implementation");
4911 #else
4912   i::V8::InitializePlatform(platform);
4913 #endif
4914 }
4915 
4916 
ShutdownPlatform()4917 void v8::V8::ShutdownPlatform() {
4918 #ifdef V8_USE_DEFAULT_PLATFORM
4919   FATAL("Can't override v8::Platform when using default implementation");
4920 #else
4921   i::V8::ShutdownPlatform();
4922 #endif
4923 }
4924 
4925 
Initialize()4926 bool v8::V8::Initialize() {
4927   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
4928   if (isolate != NULL && isolate->IsInitialized()) {
4929     return true;
4930   }
4931   return InitializeHelper(isolate);
4932 }
4933 
4934 
SetEntropySource(EntropySource entropy_source)4935 void v8::V8::SetEntropySource(EntropySource entropy_source) {
4936   i::RandomNumberGenerator::SetEntropySource(entropy_source);
4937 }
4938 
4939 
SetReturnAddressLocationResolver(ReturnAddressLocationResolver return_address_resolver)4940 void v8::V8::SetReturnAddressLocationResolver(
4941     ReturnAddressLocationResolver return_address_resolver) {
4942   i::V8::SetReturnAddressLocationResolver(return_address_resolver);
4943 }
4944 
4945 
SetFunctionEntryHook(Isolate * ext_isolate,FunctionEntryHook entry_hook)4946 bool v8::V8::SetFunctionEntryHook(Isolate* ext_isolate,
4947                                   FunctionEntryHook entry_hook) {
4948   ASSERT(ext_isolate != NULL);
4949   ASSERT(entry_hook != NULL);
4950 
4951   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(ext_isolate);
4952 
4953   // The entry hook can only be set before the Isolate is initialized, as
4954   // otherwise the Isolate's code stubs generated at initialization won't
4955   // contain entry hooks.
4956   if (isolate->IsInitialized())
4957     return false;
4958 
4959   // Setting an entry hook is a one-way operation, once set, it cannot be
4960   // changed or unset.
4961   if (isolate->function_entry_hook() != NULL)
4962     return false;
4963 
4964   isolate->set_function_entry_hook(entry_hook);
4965   return true;
4966 }
4967 
4968 
SetJitCodeEventHandler(JitCodeEventOptions options,JitCodeEventHandler event_handler)4969 void v8::V8::SetJitCodeEventHandler(
4970     JitCodeEventOptions options, JitCodeEventHandler event_handler) {
4971   i::Isolate* isolate = i::Isolate::Current();
4972   // Ensure that logging is initialized for our isolate.
4973   isolate->InitializeLoggingAndCounters();
4974   isolate->logger()->SetCodeEventHandler(options, event_handler);
4975 }
4976 
SetArrayBufferAllocator(ArrayBuffer::Allocator * allocator)4977 void v8::V8::SetArrayBufferAllocator(
4978     ArrayBuffer::Allocator* allocator) {
4979   if (!Utils::ApiCheck(i::V8::ArrayBufferAllocator() == NULL,
4980                        "v8::V8::SetArrayBufferAllocator",
4981                        "ArrayBufferAllocator might only be set once"))
4982     return;
4983   i::V8::SetArrayBufferAllocator(allocator);
4984 }
4985 
4986 
Dispose()4987 bool v8::V8::Dispose() {
4988   i::V8::TearDown();
4989   return true;
4990 }
4991 
4992 
HeapStatistics()4993 HeapStatistics::HeapStatistics(): total_heap_size_(0),
4994                                   total_heap_size_executable_(0),
4995                                   total_physical_size_(0),
4996                                   used_heap_size_(0),
4997                                   heap_size_limit_(0) { }
4998 
4999 
VisitExternalResources(ExternalResourceVisitor * visitor)5000 void v8::V8::VisitExternalResources(ExternalResourceVisitor* visitor) {
5001   i::Isolate* isolate = i::Isolate::Current();
5002   isolate->heap()->VisitExternalResources(visitor);
5003 }
5004 
5005 
5006 class VisitorAdapter : public i::ObjectVisitor {
5007  public:
VisitorAdapter(PersistentHandleVisitor * visitor)5008   explicit VisitorAdapter(PersistentHandleVisitor* visitor)
5009       : visitor_(visitor) {}
VisitPointers(i::Object ** start,i::Object ** end)5010   virtual void VisitPointers(i::Object** start, i::Object** end) {
5011     UNREACHABLE();
5012   }
VisitEmbedderReference(i::Object ** p,uint16_t class_id)5013   virtual void VisitEmbedderReference(i::Object** p, uint16_t class_id) {
5014     Value* value = ToApi<Value>(i::Handle<i::Object>(p));
5015     visitor_->VisitPersistentHandle(
5016         reinterpret_cast<Persistent<Value>*>(&value), class_id);
5017   }
5018  private:
5019   PersistentHandleVisitor* visitor_;
5020 };
5021 
5022 
VisitHandlesWithClassIds(PersistentHandleVisitor * visitor)5023 void v8::V8::VisitHandlesWithClassIds(PersistentHandleVisitor* visitor) {
5024   i::Isolate* isolate = i::Isolate::Current();
5025   i::DisallowHeapAllocation no_allocation;
5026 
5027   VisitorAdapter visitor_adapter(visitor);
5028   isolate->global_handles()->IterateAllRootsWithClassIds(&visitor_adapter);
5029 }
5030 
5031 
VisitHandlesForPartialDependence(Isolate * exported_isolate,PersistentHandleVisitor * visitor)5032 void v8::V8::VisitHandlesForPartialDependence(
5033     Isolate* exported_isolate, PersistentHandleVisitor* visitor) {
5034   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(exported_isolate);
5035   ASSERT(isolate == i::Isolate::Current());
5036   i::DisallowHeapAllocation no_allocation;
5037 
5038   VisitorAdapter visitor_adapter(visitor);
5039   isolate->global_handles()->IterateAllRootsInNewSpaceWithClassIds(
5040       &visitor_adapter);
5041 }
5042 
5043 
IdleNotification(int hint)5044 bool v8::V8::IdleNotification(int hint) {
5045   // Returning true tells the caller that it need not
5046   // continue to call IdleNotification.
5047   i::Isolate* isolate = i::Isolate::Current();
5048   if (isolate == NULL || !isolate->IsInitialized()) return true;
5049   if (!i::FLAG_use_idle_notification) return true;
5050   return isolate->heap()->IdleNotification(hint);
5051 }
5052 
5053 
LowMemoryNotification()5054 void v8::V8::LowMemoryNotification() {
5055   i::Isolate* isolate = i::Isolate::Current();
5056   if (isolate == NULL || !isolate->IsInitialized()) return;
5057   isolate->heap()->CollectAllAvailableGarbage("low memory notification");
5058 }
5059 
5060 
ContextDisposedNotification()5061 int v8::V8::ContextDisposedNotification() {
5062   i::Isolate* isolate = i::Isolate::Current();
5063   if (!isolate->IsInitialized()) return 0;
5064   return isolate->heap()->NotifyContextDisposed();
5065 }
5066 
5067 
InitializeICU(const char * icu_data_file)5068 bool v8::V8::InitializeICU(const char* icu_data_file) {
5069   return i::InitializeICU(icu_data_file);
5070 }
5071 
5072 
GetVersion()5073 const char* v8::V8::GetVersion() {
5074   return i::Version::GetVersion();
5075 }
5076 
5077 
CreateEnvironment(i::Isolate * isolate,v8::ExtensionConfiguration * extensions,v8::Handle<ObjectTemplate> global_template,v8::Handle<Value> global_object)5078 static i::Handle<i::Context> CreateEnvironment(
5079     i::Isolate* isolate,
5080     v8::ExtensionConfiguration* extensions,
5081     v8::Handle<ObjectTemplate> global_template,
5082     v8::Handle<Value> global_object) {
5083   i::Handle<i::Context> env;
5084 
5085   // Enter V8 via an ENTER_V8 scope.
5086   {
5087     ENTER_V8(isolate);
5088     v8::Handle<ObjectTemplate> proxy_template = global_template;
5089     i::Handle<i::FunctionTemplateInfo> proxy_constructor;
5090     i::Handle<i::FunctionTemplateInfo> global_constructor;
5091 
5092     if (!global_template.IsEmpty()) {
5093       // Make sure that the global_template has a constructor.
5094       global_constructor = EnsureConstructor(isolate, *global_template);
5095 
5096       // Create a fresh template for the global proxy object.
5097       proxy_template = ObjectTemplate::New(
5098           reinterpret_cast<v8::Isolate*>(isolate));
5099       proxy_constructor = EnsureConstructor(isolate, *proxy_template);
5100 
5101       // Set the global template to be the prototype template of
5102       // global proxy template.
5103       proxy_constructor->set_prototype_template(
5104           *Utils::OpenHandle(*global_template));
5105 
5106       // Migrate security handlers from global_template to
5107       // proxy_template.  Temporarily removing access check
5108       // information from the global template.
5109       if (!global_constructor->access_check_info()->IsUndefined()) {
5110         proxy_constructor->set_access_check_info(
5111             global_constructor->access_check_info());
5112         proxy_constructor->set_needs_access_check(
5113             global_constructor->needs_access_check());
5114         global_constructor->set_needs_access_check(false);
5115         global_constructor->set_access_check_info(
5116             isolate->heap()->undefined_value());
5117       }
5118     }
5119 
5120     // Create the environment.
5121     env = isolate->bootstrapper()->CreateEnvironment(
5122         Utils::OpenHandle(*global_object, true),
5123         proxy_template,
5124         extensions);
5125 
5126     // Restore the access check info on the global template.
5127     if (!global_template.IsEmpty()) {
5128       ASSERT(!global_constructor.is_null());
5129       ASSERT(!proxy_constructor.is_null());
5130       global_constructor->set_access_check_info(
5131           proxy_constructor->access_check_info());
5132       global_constructor->set_needs_access_check(
5133           proxy_constructor->needs_access_check());
5134     }
5135   }
5136   // Leave V8.
5137 
5138   return env;
5139 }
5140 
New(v8::Isolate * external_isolate,v8::ExtensionConfiguration * extensions,v8::Handle<ObjectTemplate> global_template,v8::Handle<Value> global_object)5141 Local<Context> v8::Context::New(
5142     v8::Isolate* external_isolate,
5143     v8::ExtensionConfiguration* extensions,
5144     v8::Handle<ObjectTemplate> global_template,
5145     v8::Handle<Value> global_object) {
5146   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(external_isolate);
5147   EnsureInitializedForIsolate(isolate, "v8::Context::New()");
5148   LOG_API(isolate, "Context::New");
5149   ON_BAILOUT(isolate, "v8::Context::New()", return Local<Context>());
5150   i::HandleScope scope(isolate);
5151   ExtensionConfiguration no_extensions;
5152   if (extensions == NULL) extensions = &no_extensions;
5153   i::Handle<i::Context> env =
5154       CreateEnvironment(isolate, extensions, global_template, global_object);
5155   if (env.is_null()) return Local<Context>();
5156   return Utils::ToLocal(scope.CloseAndEscape(env));
5157 }
5158 
5159 
SetSecurityToken(Handle<Value> token)5160 void v8::Context::SetSecurityToken(Handle<Value> token) {
5161   i::Isolate* isolate = i::Isolate::Current();
5162   ENTER_V8(isolate);
5163   i::Handle<i::Context> env = Utils::OpenHandle(this);
5164   i::Handle<i::Object> token_handle = Utils::OpenHandle(*token);
5165   env->set_security_token(*token_handle);
5166 }
5167 
5168 
UseDefaultSecurityToken()5169 void v8::Context::UseDefaultSecurityToken() {
5170   i::Isolate* isolate = i::Isolate::Current();
5171   ENTER_V8(isolate);
5172   i::Handle<i::Context> env = Utils::OpenHandle(this);
5173   env->set_security_token(env->global_object());
5174 }
5175 
5176 
GetSecurityToken()5177 Handle<Value> v8::Context::GetSecurityToken() {
5178   i::Isolate* isolate = i::Isolate::Current();
5179   i::Handle<i::Context> env = Utils::OpenHandle(this);
5180   i::Object* security_token = env->security_token();
5181   i::Handle<i::Object> token_handle(security_token, isolate);
5182   return Utils::ToLocal(token_handle);
5183 }
5184 
5185 
GetIsolate()5186 v8::Isolate* Context::GetIsolate() {
5187   i::Handle<i::Context> env = Utils::OpenHandle(this);
5188   return reinterpret_cast<Isolate*>(env->GetIsolate());
5189 }
5190 
5191 
Global()5192 v8::Local<v8::Object> Context::Global() {
5193   i::Handle<i::Context> context = Utils::OpenHandle(this);
5194   i::Isolate* isolate = context->GetIsolate();
5195   i::Handle<i::Object> global(context->global_proxy(), isolate);
5196   // TODO(dcarney): This should always return the global proxy
5197   // but can't presently as calls to GetProtoype will return the wrong result.
5198   if (i::Handle<i::JSGlobalProxy>::cast(
5199           global)->IsDetachedFrom(context->global_object())) {
5200     global = i::Handle<i::Object>(context->global_object(), isolate);
5201   }
5202   return Utils::ToLocal(i::Handle<i::JSObject>::cast(global));
5203 }
5204 
5205 
DetachGlobal()5206 void Context::DetachGlobal() {
5207   i::Handle<i::Context> context = Utils::OpenHandle(this);
5208   i::Isolate* isolate = context->GetIsolate();
5209   ENTER_V8(isolate);
5210   isolate->bootstrapper()->DetachGlobal(context);
5211 }
5212 
5213 
AllowCodeGenerationFromStrings(bool allow)5214 void Context::AllowCodeGenerationFromStrings(bool allow) {
5215   i::Handle<i::Context> context = Utils::OpenHandle(this);
5216   i::Isolate* isolate = context->GetIsolate();
5217   ENTER_V8(isolate);
5218   context->set_allow_code_gen_from_strings(
5219       allow ? isolate->heap()->true_value() : isolate->heap()->false_value());
5220 }
5221 
5222 
IsCodeGenerationFromStringsAllowed()5223 bool Context::IsCodeGenerationFromStringsAllowed() {
5224   i::Handle<i::Context> context = Utils::OpenHandle(this);
5225   return !context->allow_code_gen_from_strings()->IsFalse();
5226 }
5227 
5228 
SetErrorMessageForCodeGenerationFromStrings(Handle<String> error)5229 void Context::SetErrorMessageForCodeGenerationFromStrings(
5230     Handle<String> error) {
5231   i::Handle<i::Context> context = Utils::OpenHandle(this);
5232   i::Handle<i::String> error_handle = Utils::OpenHandle(*error);
5233   context->set_error_message_for_code_gen_from_strings(*error_handle);
5234 }
5235 
5236 
NewInstance()5237 Local<v8::Object> ObjectTemplate::NewInstance() {
5238   i::Isolate* isolate = i::Isolate::Current();
5239   ON_BAILOUT(isolate, "v8::ObjectTemplate::NewInstance()",
5240              return Local<v8::Object>());
5241   LOG_API(isolate, "ObjectTemplate::NewInstance");
5242   ENTER_V8(isolate);
5243   EXCEPTION_PREAMBLE(isolate);
5244   i::Handle<i::Object> obj;
5245   has_pending_exception = !i::Execution::InstantiateObject(
5246       Utils::OpenHandle(this)).ToHandle(&obj);
5247   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::Object>());
5248   return Utils::ToLocal(i::Handle<i::JSObject>::cast(obj));
5249 }
5250 
5251 
GetFunction()5252 Local<v8::Function> FunctionTemplate::GetFunction() {
5253   i::Isolate* isolate = i::Isolate::Current();
5254   ON_BAILOUT(isolate, "v8::FunctionTemplate::GetFunction()",
5255              return Local<v8::Function>());
5256   LOG_API(isolate, "FunctionTemplate::GetFunction");
5257   ENTER_V8(isolate);
5258   EXCEPTION_PREAMBLE(isolate);
5259   i::Handle<i::Object> obj;
5260   has_pending_exception = !i::Execution::InstantiateFunction(
5261       Utils::OpenHandle(this)).ToHandle(&obj);
5262   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::Function>());
5263   return Utils::ToLocal(i::Handle<i::JSFunction>::cast(obj));
5264 }
5265 
5266 
HasInstance(v8::Handle<v8::Value> value)5267 bool FunctionTemplate::HasInstance(v8::Handle<v8::Value> value) {
5268   ON_BAILOUT(i::Isolate::Current(), "v8::FunctionTemplate::HasInstanceOf()",
5269              return false);
5270   i::Object* obj = *Utils::OpenHandle(*value);
5271   return Utils::OpenHandle(this)->IsTemplateFor(obj);
5272 }
5273 
5274 
New(Isolate * isolate,void * value)5275 Local<External> v8::External::New(Isolate* isolate, void* value) {
5276   STATIC_ASSERT(sizeof(value) == sizeof(i::Address));
5277   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5278   EnsureInitializedForIsolate(i_isolate, "v8::External::New()");
5279   LOG_API(i_isolate, "External::New");
5280   ENTER_V8(i_isolate);
5281   i::Handle<i::JSObject> external = i_isolate->factory()->NewExternal(value);
5282   return Utils::ExternalToLocal(external);
5283 }
5284 
5285 
Value() const5286 void* External::Value() const {
5287   return ExternalValue(*Utils::OpenHandle(this));
5288 }
5289 
5290 
5291 // anonymous namespace for string creation helper functions
5292 namespace {
5293 
StringLength(const char * string)5294 inline int StringLength(const char* string) {
5295   return i::StrLength(string);
5296 }
5297 
5298 
StringLength(const uint8_t * string)5299 inline int StringLength(const uint8_t* string) {
5300   return i::StrLength(reinterpret_cast<const char*>(string));
5301 }
5302 
5303 
StringLength(const uint16_t * string)5304 inline int StringLength(const uint16_t* string) {
5305   int length = 0;
5306   while (string[length] != '\0')
5307     length++;
5308   return length;
5309 }
5310 
5311 
5312 MUST_USE_RESULT
NewString(i::Factory * factory,String::NewStringType type,i::Vector<const char> string)5313 inline i::MaybeHandle<i::String> NewString(i::Factory* factory,
5314                                            String::NewStringType type,
5315                                            i::Vector<const char> string) {
5316   if (type == String::kInternalizedString) {
5317     return factory->InternalizeUtf8String(string);
5318   }
5319   return factory->NewStringFromUtf8(string);
5320 }
5321 
5322 
5323 MUST_USE_RESULT
NewString(i::Factory * factory,String::NewStringType type,i::Vector<const uint8_t> string)5324 inline i::MaybeHandle<i::String> NewString(i::Factory* factory,
5325                                            String::NewStringType type,
5326                                            i::Vector<const uint8_t> string) {
5327   if (type == String::kInternalizedString) {
5328     return factory->InternalizeOneByteString(string);
5329   }
5330   return factory->NewStringFromOneByte(string);
5331 }
5332 
5333 
5334 MUST_USE_RESULT
NewString(i::Factory * factory,String::NewStringType type,i::Vector<const uint16_t> string)5335 inline i::MaybeHandle<i::String> NewString(i::Factory* factory,
5336                                            String::NewStringType type,
5337                                            i::Vector<const uint16_t> string) {
5338   if (type == String::kInternalizedString) {
5339     return factory->InternalizeTwoByteString(string);
5340   }
5341   return factory->NewStringFromTwoByte(string);
5342 }
5343 
5344 
5345 template<typename Char>
NewString(Isolate * v8_isolate,const char * location,const char * env,const Char * data,String::NewStringType type,int length)5346 inline Local<String> NewString(Isolate* v8_isolate,
5347                                const char* location,
5348                                const char* env,
5349                                const Char* data,
5350                                String::NewStringType type,
5351                                int length) {
5352   i::Isolate* isolate = reinterpret_cast<internal::Isolate*>(v8_isolate);
5353   EnsureInitializedForIsolate(isolate, location);
5354   LOG_API(isolate, env);
5355   if (length == 0 && type != String::kUndetectableString) {
5356     return String::Empty(v8_isolate);
5357   }
5358   ENTER_V8(isolate);
5359   if (length == -1) length = StringLength(data);
5360   // We do not expect this to fail. Change this if it does.
5361   i::Handle<i::String> result = NewString(
5362       isolate->factory(),
5363       type,
5364       i::Vector<const Char>(data, length)).ToHandleChecked();
5365   if (type == String::kUndetectableString) {
5366     result->MarkAsUndetectable();
5367   }
5368   return Utils::ToLocal(result);
5369 }
5370 
5371 }  // anonymous namespace
5372 
5373 
NewFromUtf8(Isolate * isolate,const char * data,NewStringType type,int length)5374 Local<String> String::NewFromUtf8(Isolate* isolate,
5375                                   const char* data,
5376                                   NewStringType type,
5377                                   int length) {
5378   return NewString(isolate,
5379                    "v8::String::NewFromUtf8()",
5380                    "String::NewFromUtf8",
5381                    data,
5382                    type,
5383                    length);
5384 }
5385 
5386 
NewFromOneByte(Isolate * isolate,const uint8_t * data,NewStringType type,int length)5387 Local<String> String::NewFromOneByte(Isolate* isolate,
5388                                      const uint8_t* data,
5389                                      NewStringType type,
5390                                      int length) {
5391   return NewString(isolate,
5392                    "v8::String::NewFromOneByte()",
5393                    "String::NewFromOneByte",
5394                    data,
5395                    type,
5396                    length);
5397 }
5398 
5399 
NewFromTwoByte(Isolate * isolate,const uint16_t * data,NewStringType type,int length)5400 Local<String> String::NewFromTwoByte(Isolate* isolate,
5401                                      const uint16_t* data,
5402                                      NewStringType type,
5403                                      int length) {
5404   return NewString(isolate,
5405                    "v8::String::NewFromTwoByte()",
5406                    "String::NewFromTwoByte",
5407                    data,
5408                    type,
5409                    length);
5410 }
5411 
5412 
Concat(Handle<String> left,Handle<String> right)5413 Local<String> v8::String::Concat(Handle<String> left, Handle<String> right) {
5414   i::Handle<i::String> left_string = Utils::OpenHandle(*left);
5415   i::Isolate* isolate = left_string->GetIsolate();
5416   EnsureInitializedForIsolate(isolate, "v8::String::New()");
5417   LOG_API(isolate, "String::New(char)");
5418   ENTER_V8(isolate);
5419   i::Handle<i::String> right_string = Utils::OpenHandle(*right);
5420   // We do not expect this to fail. Change this if it does.
5421   i::Handle<i::String> result = isolate->factory()->NewConsString(
5422       left_string, right_string).ToHandleChecked();
5423   return Utils::ToLocal(result);
5424 }
5425 
5426 
NewExternalStringHandle(i::Isolate * isolate,v8::String::ExternalStringResource * resource)5427 static i::Handle<i::String> NewExternalStringHandle(
5428     i::Isolate* isolate,
5429     v8::String::ExternalStringResource* resource) {
5430   // We do not expect this to fail. Change this if it does.
5431   return isolate->factory()->NewExternalStringFromTwoByte(
5432       resource).ToHandleChecked();
5433 }
5434 
5435 
NewExternalAsciiStringHandle(i::Isolate * isolate,v8::String::ExternalAsciiStringResource * resource)5436 static i::Handle<i::String> NewExternalAsciiStringHandle(
5437     i::Isolate* isolate,
5438     v8::String::ExternalAsciiStringResource* resource) {
5439   // We do not expect this to fail. Change this if it does.
5440   return isolate->factory()->NewExternalStringFromAscii(
5441       resource).ToHandleChecked();
5442 }
5443 
5444 
NewExternal(Isolate * isolate,v8::String::ExternalStringResource * resource)5445 Local<String> v8::String::NewExternal(
5446     Isolate* isolate,
5447     v8::String::ExternalStringResource* resource) {
5448   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5449   EnsureInitializedForIsolate(i_isolate, "v8::String::NewExternal()");
5450   LOG_API(i_isolate, "String::NewExternal");
5451   ENTER_V8(i_isolate);
5452   CHECK(resource && resource->data());
5453   i::Handle<i::String> result = NewExternalStringHandle(i_isolate, resource);
5454   i_isolate->heap()->external_string_table()->AddString(*result);
5455   return Utils::ToLocal(result);
5456 }
5457 
5458 
MakeExternal(v8::String::ExternalStringResource * resource)5459 bool v8::String::MakeExternal(v8::String::ExternalStringResource* resource) {
5460   i::Handle<i::String> obj = Utils::OpenHandle(this);
5461   i::Isolate* isolate = obj->GetIsolate();
5462   if (i::StringShape(*obj).IsExternalTwoByte()) {
5463     return false;  // Already an external string.
5464   }
5465   ENTER_V8(isolate);
5466   if (isolate->string_tracker()->IsFreshUnusedString(obj)) {
5467     return false;
5468   }
5469   if (isolate->heap()->IsInGCPostProcessing()) {
5470     return false;
5471   }
5472   CHECK(resource && resource->data());
5473 
5474   bool result = obj->MakeExternal(resource);
5475   if (result) {
5476     ASSERT(obj->IsExternalString());
5477     isolate->heap()->external_string_table()->AddString(*obj);
5478   }
5479   return result;
5480 }
5481 
5482 
NewExternal(Isolate * isolate,v8::String::ExternalAsciiStringResource * resource)5483 Local<String> v8::String::NewExternal(
5484     Isolate* isolate,
5485     v8::String::ExternalAsciiStringResource* resource) {
5486   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5487   EnsureInitializedForIsolate(i_isolate, "v8::String::NewExternal()");
5488   LOG_API(i_isolate, "String::NewExternal");
5489   ENTER_V8(i_isolate);
5490   CHECK(resource && resource->data());
5491   i::Handle<i::String> result =
5492       NewExternalAsciiStringHandle(i_isolate, resource);
5493   i_isolate->heap()->external_string_table()->AddString(*result);
5494   return Utils::ToLocal(result);
5495 }
5496 
5497 
MakeExternal(v8::String::ExternalAsciiStringResource * resource)5498 bool v8::String::MakeExternal(
5499     v8::String::ExternalAsciiStringResource* resource) {
5500   i::Handle<i::String> obj = Utils::OpenHandle(this);
5501   i::Isolate* isolate = obj->GetIsolate();
5502   if (i::StringShape(*obj).IsExternalTwoByte()) {
5503     return false;  // Already an external string.
5504   }
5505   ENTER_V8(isolate);
5506   if (isolate->string_tracker()->IsFreshUnusedString(obj)) {
5507     return false;
5508   }
5509   if (isolate->heap()->IsInGCPostProcessing()) {
5510     return false;
5511   }
5512   CHECK(resource && resource->data());
5513 
5514   bool result = obj->MakeExternal(resource);
5515   if (result) {
5516     ASSERT(obj->IsExternalString());
5517     isolate->heap()->external_string_table()->AddString(*obj);
5518   }
5519   return result;
5520 }
5521 
5522 
CanMakeExternal()5523 bool v8::String::CanMakeExternal() {
5524   if (!internal::FLAG_clever_optimizations) return false;
5525   i::Handle<i::String> obj = Utils::OpenHandle(this);
5526   i::Isolate* isolate = obj->GetIsolate();
5527 
5528   // TODO(yangguo): Externalizing sliced/cons strings allocates.
5529   // This rule can be removed when all code that can
5530   // trigger an access check is handlified and therefore GC safe.
5531   if (isolate->heap()->old_pointer_space()->Contains(*obj)) return false;
5532 
5533   if (isolate->string_tracker()->IsFreshUnusedString(obj)) return false;
5534   int size = obj->Size();  // Byte size of the original string.
5535   if (size < i::ExternalString::kShortSize) return false;
5536   i::StringShape shape(*obj);
5537   return !shape.IsExternal();
5538 }
5539 
5540 
New(Isolate * isolate)5541 Local<v8::Object> v8::Object::New(Isolate* isolate) {
5542   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5543   EnsureInitializedForIsolate(i_isolate, "v8::Object::New()");
5544   LOG_API(i_isolate, "Object::New");
5545   ENTER_V8(i_isolate);
5546   i::Handle<i::JSObject> obj =
5547       i_isolate->factory()->NewJSObject(i_isolate->object_function());
5548   return Utils::ToLocal(obj);
5549 }
5550 
5551 
New(Isolate * isolate,double value)5552 Local<v8::Value> v8::NumberObject::New(Isolate* isolate, double value) {
5553   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5554   EnsureInitializedForIsolate(i_isolate, "v8::NumberObject::New()");
5555   LOG_API(i_isolate, "NumberObject::New");
5556   ENTER_V8(i_isolate);
5557   i::Handle<i::Object> number = i_isolate->factory()->NewNumber(value);
5558   i::Handle<i::Object> obj =
5559       i::Object::ToObject(i_isolate, number).ToHandleChecked();
5560   return Utils::ToLocal(obj);
5561 }
5562 
5563 
ValueOf() const5564 double v8::NumberObject::ValueOf() const {
5565   i::Handle<i::Object> obj = Utils::OpenHandle(this);
5566   i::Handle<i::JSValue> jsvalue = i::Handle<i::JSValue>::cast(obj);
5567   i::Isolate* isolate = jsvalue->GetIsolate();
5568   LOG_API(isolate, "NumberObject::NumberValue");
5569   return jsvalue->value()->Number();
5570 }
5571 
5572 
New(bool value)5573 Local<v8::Value> v8::BooleanObject::New(bool value) {
5574   i::Isolate* isolate = i::Isolate::Current();
5575   EnsureInitializedForIsolate(isolate, "v8::BooleanObject::New()");
5576   LOG_API(isolate, "BooleanObject::New");
5577   ENTER_V8(isolate);
5578   i::Handle<i::Object> boolean(value
5579                                ? isolate->heap()->true_value()
5580                                : isolate->heap()->false_value(),
5581                                isolate);
5582   i::Handle<i::Object> obj =
5583       i::Object::ToObject(isolate, boolean).ToHandleChecked();
5584   return Utils::ToLocal(obj);
5585 }
5586 
5587 
ValueOf() const5588 bool v8::BooleanObject::ValueOf() const {
5589   i::Handle<i::Object> obj = Utils::OpenHandle(this);
5590   i::Handle<i::JSValue> jsvalue = i::Handle<i::JSValue>::cast(obj);
5591   i::Isolate* isolate = jsvalue->GetIsolate();
5592   LOG_API(isolate, "BooleanObject::BooleanValue");
5593   return jsvalue->value()->IsTrue();
5594 }
5595 
5596 
New(Handle<String> value)5597 Local<v8::Value> v8::StringObject::New(Handle<String> value) {
5598   i::Handle<i::String> string = Utils::OpenHandle(*value);
5599   i::Isolate* isolate = string->GetIsolate();
5600   EnsureInitializedForIsolate(isolate, "v8::StringObject::New()");
5601   LOG_API(isolate, "StringObject::New");
5602   ENTER_V8(isolate);
5603   i::Handle<i::Object> obj =
5604       i::Object::ToObject(isolate, string).ToHandleChecked();
5605   return Utils::ToLocal(obj);
5606 }
5607 
5608 
ValueOf() const5609 Local<v8::String> v8::StringObject::ValueOf() const {
5610   i::Handle<i::Object> obj = Utils::OpenHandle(this);
5611   i::Handle<i::JSValue> jsvalue = i::Handle<i::JSValue>::cast(obj);
5612   i::Isolate* isolate = jsvalue->GetIsolate();
5613   LOG_API(isolate, "StringObject::StringValue");
5614   return Utils::ToLocal(
5615       i::Handle<i::String>(i::String::cast(jsvalue->value())));
5616 }
5617 
5618 
New(Isolate * isolate,Handle<Symbol> value)5619 Local<v8::Value> v8::SymbolObject::New(Isolate* isolate, Handle<Symbol> value) {
5620   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5621   EnsureInitializedForIsolate(i_isolate, "v8::SymbolObject::New()");
5622   LOG_API(i_isolate, "SymbolObject::New");
5623   ENTER_V8(i_isolate);
5624   i::Handle<i::Object> obj = i::Object::ToObject(
5625       i_isolate, Utils::OpenHandle(*value)).ToHandleChecked();
5626   return Utils::ToLocal(obj);
5627 }
5628 
5629 
ValueOf() const5630 Local<v8::Symbol> v8::SymbolObject::ValueOf() const {
5631   i::Handle<i::Object> obj = Utils::OpenHandle(this);
5632   i::Handle<i::JSValue> jsvalue = i::Handle<i::JSValue>::cast(obj);
5633   i::Isolate* isolate = jsvalue->GetIsolate();
5634   LOG_API(isolate, "SymbolObject::SymbolValue");
5635   return Utils::ToLocal(
5636       i::Handle<i::Symbol>(i::Symbol::cast(jsvalue->value())));
5637 }
5638 
5639 
New(Isolate * isolate,double time)5640 Local<v8::Value> v8::Date::New(Isolate* isolate, double time) {
5641   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5642   EnsureInitializedForIsolate(i_isolate, "v8::Date::New()");
5643   LOG_API(i_isolate, "Date::New");
5644   if (std::isnan(time)) {
5645     // Introduce only canonical NaN value into the VM, to avoid signaling NaNs.
5646     time = i::OS::nan_value();
5647   }
5648   ENTER_V8(i_isolate);
5649   EXCEPTION_PREAMBLE(i_isolate);
5650   i::Handle<i::Object> obj;
5651   has_pending_exception = !i::Execution::NewDate(
5652       i_isolate, time).ToHandle(&obj);
5653   EXCEPTION_BAILOUT_CHECK(i_isolate, Local<v8::Value>());
5654   return Utils::ToLocal(obj);
5655 }
5656 
5657 
ValueOf() const5658 double v8::Date::ValueOf() const {
5659   i::Handle<i::Object> obj = Utils::OpenHandle(this);
5660   i::Handle<i::JSDate> jsdate = i::Handle<i::JSDate>::cast(obj);
5661   i::Isolate* isolate = jsdate->GetIsolate();
5662   LOG_API(isolate, "Date::NumberValue");
5663   return jsdate->value()->Number();
5664 }
5665 
5666 
DateTimeConfigurationChangeNotification(Isolate * isolate)5667 void v8::Date::DateTimeConfigurationChangeNotification(Isolate* isolate) {
5668   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5669   if (!i_isolate->IsInitialized()) return;
5670   ON_BAILOUT(i_isolate, "v8::Date::DateTimeConfigurationChangeNotification()",
5671              return);
5672   LOG_API(i_isolate, "Date::DateTimeConfigurationChangeNotification");
5673   ENTER_V8(i_isolate);
5674 
5675   i_isolate->date_cache()->ResetDateCache();
5676 
5677   if (!i_isolate->eternal_handles()->Exists(
5678           i::EternalHandles::DATE_CACHE_VERSION)) {
5679     return;
5680   }
5681   i::Handle<i::FixedArray> date_cache_version =
5682       i::Handle<i::FixedArray>::cast(i_isolate->eternal_handles()->GetSingleton(
5683           i::EternalHandles::DATE_CACHE_VERSION));
5684   ASSERT_EQ(1, date_cache_version->length());
5685   CHECK(date_cache_version->get(0)->IsSmi());
5686   date_cache_version->set(
5687       0,
5688       i::Smi::FromInt(i::Smi::cast(date_cache_version->get(0))->value() + 1));
5689 }
5690 
5691 
RegExpFlagsToString(RegExp::Flags flags)5692 static i::Handle<i::String> RegExpFlagsToString(RegExp::Flags flags) {
5693   i::Isolate* isolate = i::Isolate::Current();
5694   uint8_t flags_buf[3];
5695   int num_flags = 0;
5696   if ((flags & RegExp::kGlobal) != 0) flags_buf[num_flags++] = 'g';
5697   if ((flags & RegExp::kMultiline) != 0) flags_buf[num_flags++] = 'm';
5698   if ((flags & RegExp::kIgnoreCase) != 0) flags_buf[num_flags++] = 'i';
5699   ASSERT(num_flags <= static_cast<int>(ARRAY_SIZE(flags_buf)));
5700   return isolate->factory()->InternalizeOneByteString(
5701       i::Vector<const uint8_t>(flags_buf, num_flags));
5702 }
5703 
5704 
New(Handle<String> pattern,Flags flags)5705 Local<v8::RegExp> v8::RegExp::New(Handle<String> pattern,
5706                                   Flags flags) {
5707   i::Isolate* isolate = Utils::OpenHandle(*pattern)->GetIsolate();
5708   EnsureInitializedForIsolate(isolate, "v8::RegExp::New()");
5709   LOG_API(isolate, "RegExp::New");
5710   ENTER_V8(isolate);
5711   EXCEPTION_PREAMBLE(isolate);
5712   i::Handle<i::JSRegExp> obj;
5713   has_pending_exception = !i::Execution::NewJSRegExp(
5714       Utils::OpenHandle(*pattern),
5715       RegExpFlagsToString(flags)).ToHandle(&obj);
5716   EXCEPTION_BAILOUT_CHECK(isolate, Local<v8::RegExp>());
5717   return Utils::ToLocal(i::Handle<i::JSRegExp>::cast(obj));
5718 }
5719 
5720 
GetSource() const5721 Local<v8::String> v8::RegExp::GetSource() const {
5722   i::Handle<i::JSRegExp> obj = Utils::OpenHandle(this);
5723   return Utils::ToLocal(i::Handle<i::String>(obj->Pattern()));
5724 }
5725 
5726 
5727 // Assert that the static flags cast in GetFlags is valid.
5728 #define REGEXP_FLAG_ASSERT_EQ(api_flag, internal_flag)          \
5729   STATIC_ASSERT(static_cast<int>(v8::RegExp::api_flag) ==       \
5730                 static_cast<int>(i::JSRegExp::internal_flag))
5731 REGEXP_FLAG_ASSERT_EQ(kNone, NONE);
5732 REGEXP_FLAG_ASSERT_EQ(kGlobal, GLOBAL);
5733 REGEXP_FLAG_ASSERT_EQ(kIgnoreCase, IGNORE_CASE);
5734 REGEXP_FLAG_ASSERT_EQ(kMultiline, MULTILINE);
5735 #undef REGEXP_FLAG_ASSERT_EQ
5736 
GetFlags() const5737 v8::RegExp::Flags v8::RegExp::GetFlags() const {
5738   i::Handle<i::JSRegExp> obj = Utils::OpenHandle(this);
5739   return static_cast<RegExp::Flags>(obj->GetFlags().value());
5740 }
5741 
5742 
New(Isolate * isolate,int length)5743 Local<v8::Array> v8::Array::New(Isolate* isolate, int length) {
5744   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5745   EnsureInitializedForIsolate(i_isolate, "v8::Array::New()");
5746   LOG_API(i_isolate, "Array::New");
5747   ENTER_V8(i_isolate);
5748   int real_length = length > 0 ? length : 0;
5749   i::Handle<i::JSArray> obj = i_isolate->factory()->NewJSArray(real_length);
5750   i::Handle<i::Object> length_obj =
5751       i_isolate->factory()->NewNumberFromInt(real_length);
5752   obj->set_length(*length_obj);
5753   return Utils::ToLocal(obj);
5754 }
5755 
5756 
Length() const5757 uint32_t v8::Array::Length() const {
5758   i::Handle<i::JSArray> obj = Utils::OpenHandle(this);
5759   i::Object* length = obj->length();
5760   if (length->IsSmi()) {
5761     return i::Smi::cast(length)->value();
5762   } else {
5763     return static_cast<uint32_t>(length->Number());
5764   }
5765 }
5766 
5767 
CloneElementAt(uint32_t index)5768 Local<Object> Array::CloneElementAt(uint32_t index) {
5769   i::Isolate* isolate = Utils::OpenHandle(this)->GetIsolate();
5770   ON_BAILOUT(isolate, "v8::Array::CloneElementAt()", return Local<Object>());
5771   i::Handle<i::JSObject> self = Utils::OpenHandle(this);
5772   if (!self->HasFastObjectElements()) {
5773     return Local<Object>();
5774   }
5775   i::FixedArray* elms = i::FixedArray::cast(self->elements());
5776   i::Object* paragon = elms->get(index);
5777   if (!paragon->IsJSObject()) {
5778     return Local<Object>();
5779   }
5780   i::Handle<i::JSObject> paragon_handle(i::JSObject::cast(paragon));
5781   EXCEPTION_PREAMBLE(isolate);
5782   ENTER_V8(isolate);
5783   i::Handle<i::JSObject> result =
5784       isolate->factory()->CopyJSObject(paragon_handle);
5785   has_pending_exception = result.is_null();
5786   EXCEPTION_BAILOUT_CHECK(isolate, Local<Object>());
5787   return Utils::ToLocal(result);
5788 }
5789 
5790 
IsPromise() const5791 bool Value::IsPromise() const {
5792   i::Handle<i::Object> val = Utils::OpenHandle(this);
5793   if (!val->IsJSObject()) return false;
5794   i::Handle<i::JSObject> obj = i::Handle<i::JSObject>::cast(val);
5795   i::Isolate* isolate = obj->GetIsolate();
5796   LOG_API(isolate, "IsPromise");
5797   ENTER_V8(isolate);
5798   EXCEPTION_PREAMBLE(isolate);
5799   i::Handle<i::Object> argv[] = { obj };
5800   i::Handle<i::Object> b;
5801   has_pending_exception = !i::Execution::Call(
5802       isolate,
5803       handle(
5804           isolate->context()->global_object()->native_context()->is_promise()),
5805       isolate->factory()->undefined_value(),
5806       ARRAY_SIZE(argv), argv,
5807       false).ToHandle(&b);
5808   EXCEPTION_BAILOUT_CHECK(isolate, false);
5809   return b->BooleanValue();
5810 }
5811 
5812 
New(Isolate * v8_isolate)5813 Local<Promise::Resolver> Promise::Resolver::New(Isolate* v8_isolate) {
5814   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(v8_isolate);
5815   LOG_API(isolate, "Promise::Resolver::New");
5816   ENTER_V8(isolate);
5817   EXCEPTION_PREAMBLE(isolate);
5818   i::Handle<i::Object> result;
5819   has_pending_exception = !i::Execution::Call(
5820       isolate,
5821       handle(isolate->context()->global_object()->native_context()->
5822              promise_create()),
5823       isolate->factory()->undefined_value(),
5824       0, NULL,
5825       false).ToHandle(&result);
5826   EXCEPTION_BAILOUT_CHECK(isolate, Local<Promise::Resolver>());
5827   return Local<Promise::Resolver>::Cast(Utils::ToLocal(result));
5828 }
5829 
5830 
GetPromise()5831 Local<Promise> Promise::Resolver::GetPromise() {
5832   i::Handle<i::JSObject> promise = Utils::OpenHandle(this);
5833   return Local<Promise>::Cast(Utils::ToLocal(promise));
5834 }
5835 
5836 
Resolve(Handle<Value> value)5837 void Promise::Resolver::Resolve(Handle<Value> value) {
5838   i::Handle<i::JSObject> promise = Utils::OpenHandle(this);
5839   i::Isolate* isolate = promise->GetIsolate();
5840   LOG_API(isolate, "Promise::Resolver::Resolve");
5841   ENTER_V8(isolate);
5842   EXCEPTION_PREAMBLE(isolate);
5843   i::Handle<i::Object> argv[] = { promise, Utils::OpenHandle(*value) };
5844   has_pending_exception = i::Execution::Call(
5845       isolate,
5846       handle(isolate->context()->global_object()->native_context()->
5847              promise_resolve()),
5848       isolate->factory()->undefined_value(),
5849       ARRAY_SIZE(argv), argv,
5850       false).is_null();
5851   EXCEPTION_BAILOUT_CHECK(isolate, /* void */ ;);
5852 }
5853 
5854 
Reject(Handle<Value> value)5855 void Promise::Resolver::Reject(Handle<Value> value) {
5856   i::Handle<i::JSObject> promise = Utils::OpenHandle(this);
5857   i::Isolate* isolate = promise->GetIsolate();
5858   LOG_API(isolate, "Promise::Resolver::Reject");
5859   ENTER_V8(isolate);
5860   EXCEPTION_PREAMBLE(isolate);
5861   i::Handle<i::Object> argv[] = { promise, Utils::OpenHandle(*value) };
5862   has_pending_exception = i::Execution::Call(
5863       isolate,
5864       handle(isolate->context()->global_object()->native_context()->
5865              promise_reject()),
5866       isolate->factory()->undefined_value(),
5867       ARRAY_SIZE(argv), argv,
5868       false).is_null();
5869   EXCEPTION_BAILOUT_CHECK(isolate, /* void */ ;);
5870 }
5871 
5872 
Chain(Handle<Function> handler)5873 Local<Promise> Promise::Chain(Handle<Function> handler) {
5874   i::Handle<i::JSObject> promise = Utils::OpenHandle(this);
5875   i::Isolate* isolate = promise->GetIsolate();
5876   LOG_API(isolate, "Promise::Chain");
5877   ENTER_V8(isolate);
5878   EXCEPTION_PREAMBLE(isolate);
5879   i::Handle<i::Object> argv[] = { Utils::OpenHandle(*handler) };
5880   i::Handle<i::Object> result;
5881   has_pending_exception = !i::Execution::Call(
5882       isolate,
5883       handle(isolate->context()->global_object()->native_context()->
5884              promise_chain()),
5885       promise,
5886       ARRAY_SIZE(argv), argv,
5887       false).ToHandle(&result);
5888   EXCEPTION_BAILOUT_CHECK(isolate, Local<Promise>());
5889   return Local<Promise>::Cast(Utils::ToLocal(result));
5890 }
5891 
5892 
Catch(Handle<Function> handler)5893 Local<Promise> Promise::Catch(Handle<Function> handler) {
5894   i::Handle<i::JSObject> promise = Utils::OpenHandle(this);
5895   i::Isolate* isolate = promise->GetIsolate();
5896   LOG_API(isolate, "Promise::Catch");
5897   ENTER_V8(isolate);
5898   EXCEPTION_PREAMBLE(isolate);
5899   i::Handle<i::Object> argv[] = { Utils::OpenHandle(*handler) };
5900   i::Handle<i::Object> result;
5901   has_pending_exception = !i::Execution::Call(
5902       isolate,
5903       handle(isolate->context()->global_object()->native_context()->
5904              promise_catch()),
5905       promise,
5906       ARRAY_SIZE(argv), argv,
5907       false).ToHandle(&result);
5908   EXCEPTION_BAILOUT_CHECK(isolate, Local<Promise>());
5909   return Local<Promise>::Cast(Utils::ToLocal(result));
5910 }
5911 
5912 
Then(Handle<Function> handler)5913 Local<Promise> Promise::Then(Handle<Function> handler) {
5914   i::Handle<i::JSObject> promise = Utils::OpenHandle(this);
5915   i::Isolate* isolate = promise->GetIsolate();
5916   LOG_API(isolate, "Promise::Then");
5917   ENTER_V8(isolate);
5918   EXCEPTION_PREAMBLE(isolate);
5919   i::Handle<i::Object> argv[] = { Utils::OpenHandle(*handler) };
5920   i::Handle<i::Object> result;
5921   has_pending_exception = !i::Execution::Call(
5922       isolate,
5923       handle(isolate->context()->global_object()->native_context()->
5924              promise_then()),
5925       promise,
5926       ARRAY_SIZE(argv), argv,
5927       false).ToHandle(&result);
5928   EXCEPTION_BAILOUT_CHECK(isolate, Local<Promise>());
5929   return Local<Promise>::Cast(Utils::ToLocal(result));
5930 }
5931 
5932 
IsExternal() const5933 bool v8::ArrayBuffer::IsExternal() const {
5934   return Utils::OpenHandle(this)->is_external();
5935 }
5936 
5937 
Externalize()5938 v8::ArrayBuffer::Contents v8::ArrayBuffer::Externalize() {
5939   i::Handle<i::JSArrayBuffer> obj = Utils::OpenHandle(this);
5940   Utils::ApiCheck(!obj->is_external(),
5941                   "v8::ArrayBuffer::Externalize",
5942                   "ArrayBuffer already externalized");
5943   obj->set_is_external(true);
5944   size_t byte_length = static_cast<size_t>(obj->byte_length()->Number());
5945   Contents contents;
5946   contents.data_ = obj->backing_store();
5947   contents.byte_length_ = byte_length;
5948   return contents;
5949 }
5950 
5951 
Neuter()5952 void v8::ArrayBuffer::Neuter() {
5953   i::Handle<i::JSArrayBuffer> obj = Utils::OpenHandle(this);
5954   i::Isolate* isolate = obj->GetIsolate();
5955   Utils::ApiCheck(obj->is_external(),
5956                   "v8::ArrayBuffer::Neuter",
5957                   "Only externalized ArrayBuffers can be neutered");
5958   LOG_API(obj->GetIsolate(), "v8::ArrayBuffer::Neuter()");
5959   ENTER_V8(isolate);
5960   i::Runtime::NeuterArrayBuffer(obj);
5961 }
5962 
5963 
ByteLength() const5964 size_t v8::ArrayBuffer::ByteLength() const {
5965   i::Handle<i::JSArrayBuffer> obj = Utils::OpenHandle(this);
5966   return static_cast<size_t>(obj->byte_length()->Number());
5967 }
5968 
5969 
New(Isolate * isolate,size_t byte_length)5970 Local<ArrayBuffer> v8::ArrayBuffer::New(Isolate* isolate, size_t byte_length) {
5971   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5972   EnsureInitializedForIsolate(i_isolate, "v8::ArrayBuffer::New(size_t)");
5973   LOG_API(i_isolate, "v8::ArrayBuffer::New(size_t)");
5974   ENTER_V8(i_isolate);
5975   i::Handle<i::JSArrayBuffer> obj =
5976       i_isolate->factory()->NewJSArrayBuffer();
5977   i::Runtime::SetupArrayBufferAllocatingData(i_isolate, obj, byte_length);
5978   return Utils::ToLocal(obj);
5979 }
5980 
5981 
New(Isolate * isolate,void * data,size_t byte_length)5982 Local<ArrayBuffer> v8::ArrayBuffer::New(Isolate* isolate, void* data,
5983                                         size_t byte_length) {
5984   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
5985   EnsureInitializedForIsolate(i_isolate, "v8::ArrayBuffer::New(void*, size_t)");
5986   LOG_API(i_isolate, "v8::ArrayBuffer::New(void*, size_t)");
5987   ENTER_V8(i_isolate);
5988   i::Handle<i::JSArrayBuffer> obj =
5989       i_isolate->factory()->NewJSArrayBuffer();
5990   i::Runtime::SetupArrayBuffer(i_isolate, obj, true, data, byte_length);
5991   return Utils::ToLocal(obj);
5992 }
5993 
5994 
Buffer()5995 Local<ArrayBuffer> v8::ArrayBufferView::Buffer() {
5996   i::Handle<i::JSArrayBufferView> obj = Utils::OpenHandle(this);
5997   i::Handle<i::JSArrayBuffer> buffer;
5998   if (obj->IsJSDataView()) {
5999     i::Handle<i::JSDataView> data_view(i::JSDataView::cast(*obj));
6000     ASSERT(data_view->buffer()->IsJSArrayBuffer());
6001     buffer = i::handle(i::JSArrayBuffer::cast(data_view->buffer()));
6002   } else {
6003     ASSERT(obj->IsJSTypedArray());
6004     buffer = i::JSTypedArray::cast(*obj)->GetBuffer();
6005   }
6006   return Utils::ToLocal(buffer);
6007 }
6008 
6009 
ByteOffset()6010 size_t v8::ArrayBufferView::ByteOffset() {
6011   i::Handle<i::JSArrayBufferView> obj = Utils::OpenHandle(this);
6012   return static_cast<size_t>(obj->byte_offset()->Number());
6013 }
6014 
6015 
ByteLength()6016 size_t v8::ArrayBufferView::ByteLength() {
6017   i::Handle<i::JSArrayBufferView> obj = Utils::OpenHandle(this);
6018   return static_cast<size_t>(obj->byte_length()->Number());
6019 }
6020 
6021 
Length()6022 size_t v8::TypedArray::Length() {
6023   i::Handle<i::JSTypedArray> obj = Utils::OpenHandle(this);
6024   return static_cast<size_t>(obj->length()->Number());
6025 }
6026 
6027 
SetupArrayBufferView(i::Isolate * isolate,i::Handle<i::JSArrayBufferView> obj,i::Handle<i::JSArrayBuffer> buffer,size_t byte_offset,size_t byte_length)6028 static inline void SetupArrayBufferView(
6029     i::Isolate* isolate,
6030     i::Handle<i::JSArrayBufferView> obj,
6031     i::Handle<i::JSArrayBuffer> buffer,
6032     size_t byte_offset,
6033     size_t byte_length) {
6034   ASSERT(byte_offset + byte_length <=
6035          static_cast<size_t>(buffer->byte_length()->Number()));
6036 
6037   obj->set_buffer(*buffer);
6038 
6039   obj->set_weak_next(buffer->weak_first_view());
6040   buffer->set_weak_first_view(*obj);
6041 
6042   i::Handle<i::Object> byte_offset_object =
6043       isolate->factory()->NewNumberFromSize(byte_offset);
6044   obj->set_byte_offset(*byte_offset_object);
6045 
6046   i::Handle<i::Object> byte_length_object =
6047       isolate->factory()->NewNumberFromSize(byte_length);
6048   obj->set_byte_length(*byte_length_object);
6049 }
6050 
6051 template<typename ElementType,
6052          ExternalArrayType array_type,
6053          i::ElementsKind elements_kind>
NewTypedArray(i::Isolate * isolate,Handle<ArrayBuffer> array_buffer,size_t byte_offset,size_t length)6054 i::Handle<i::JSTypedArray> NewTypedArray(
6055     i::Isolate* isolate,
6056     Handle<ArrayBuffer> array_buffer, size_t byte_offset, size_t length) {
6057   i::Handle<i::JSTypedArray> obj =
6058       isolate->factory()->NewJSTypedArray(array_type);
6059   i::Handle<i::JSArrayBuffer> buffer = Utils::OpenHandle(*array_buffer);
6060 
6061   ASSERT(byte_offset % sizeof(ElementType) == 0);
6062 
6063   CHECK(length <= (std::numeric_limits<size_t>::max() / sizeof(ElementType)));
6064   CHECK(length <= static_cast<size_t>(i::Smi::kMaxValue));
6065   size_t byte_length = length * sizeof(ElementType);
6066   SetupArrayBufferView(
6067       isolate, obj, buffer, byte_offset, byte_length);
6068 
6069   i::Handle<i::Object> length_object =
6070       isolate->factory()->NewNumberFromSize(length);
6071   obj->set_length(*length_object);
6072 
6073   i::Handle<i::ExternalArray> elements =
6074       isolate->factory()->NewExternalArray(
6075           static_cast<int>(length), array_type,
6076           static_cast<uint8_t*>(buffer->backing_store()) + byte_offset);
6077   i::Handle<i::Map> map =
6078       i::JSObject::GetElementsTransitionMap(obj, elements_kind);
6079   i::JSObject::SetMapAndElements(obj, map, elements);
6080   return obj;
6081 }
6082 
6083 
6084 #define TYPED_ARRAY_NEW(Type, type, TYPE, ctype, size)                       \
6085   Local<Type##Array> Type##Array::New(Handle<ArrayBuffer> array_buffer,      \
6086                                     size_t byte_offset, size_t length) {     \
6087     i::Isolate* isolate = Utils::OpenHandle(*array_buffer)->GetIsolate();    \
6088     EnsureInitializedForIsolate(isolate,                                     \
6089         "v8::" #Type "Array::New(Handle<ArrayBuffer>, size_t, size_t)");     \
6090     LOG_API(isolate,                                                         \
6091         "v8::" #Type "Array::New(Handle<ArrayBuffer>, size_t, size_t)");     \
6092     ENTER_V8(isolate);                                                       \
6093     if (!Utils::ApiCheck(length <= static_cast<size_t>(i::Smi::kMaxValue),   \
6094             "v8::" #Type "Array::New(Handle<ArrayBuffer>, size_t, size_t)",  \
6095             "length exceeds max allowed value")) {                           \
6096       return Local<Type##Array>();                                          \
6097     }                                                                        \
6098     i::Handle<i::JSTypedArray> obj =                                         \
6099         NewTypedArray<ctype, v8::kExternal##Type##Array,                     \
6100                       i::EXTERNAL_##TYPE##_ELEMENTS>(                        \
6101             isolate, array_buffer, byte_offset, length);                     \
6102     return Utils::ToLocal##Type##Array(obj);                                 \
6103   }
6104 
6105 
TYPED_ARRAYS(TYPED_ARRAY_NEW)6106 TYPED_ARRAYS(TYPED_ARRAY_NEW)
6107 #undef TYPED_ARRAY_NEW
6108 
6109 Local<DataView> DataView::New(Handle<ArrayBuffer> array_buffer,
6110                               size_t byte_offset, size_t byte_length) {
6111   i::Handle<i::JSArrayBuffer> buffer = Utils::OpenHandle(*array_buffer);
6112   i::Isolate* isolate = buffer->GetIsolate();
6113   EnsureInitializedForIsolate(
6114       isolate, "v8::DataView::New(void*, size_t, size_t)");
6115   LOG_API(isolate, "v8::DataView::New(void*, size_t, size_t)");
6116   ENTER_V8(isolate);
6117   i::Handle<i::JSDataView> obj = isolate->factory()->NewJSDataView();
6118   SetupArrayBufferView(
6119       isolate, obj, buffer, byte_offset, byte_length);
6120   return Utils::ToLocal(obj);
6121 }
6122 
6123 
New(Isolate * isolate,Local<String> name)6124 Local<Symbol> v8::Symbol::New(Isolate* isolate, Local<String> name) {
6125   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6126   EnsureInitializedForIsolate(i_isolate, "v8::Symbol::New()");
6127   LOG_API(i_isolate, "Symbol::New()");
6128   ENTER_V8(i_isolate);
6129   i::Handle<i::Symbol> result = i_isolate->factory()->NewSymbol();
6130   if (!name.IsEmpty()) result->set_name(*Utils::OpenHandle(*name));
6131   return Utils::ToLocal(result);
6132 }
6133 
6134 
For(Isolate * isolate,Local<String> name)6135 Local<Symbol> v8::Symbol::For(Isolate* isolate, Local<String> name) {
6136   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6137   i::Handle<i::String> i_name = Utils::OpenHandle(*name);
6138   i::Handle<i::JSObject> registry = i_isolate->GetSymbolRegistry();
6139   i::Handle<i::String> part = i_isolate->factory()->for_string();
6140   i::Handle<i::JSObject> symbols =
6141       i::Handle<i::JSObject>::cast(
6142           i::Object::GetPropertyOrElement(registry, part).ToHandleChecked());
6143   i::Handle<i::Object> symbol =
6144       i::Object::GetPropertyOrElement(symbols, i_name).ToHandleChecked();
6145   if (!symbol->IsSymbol()) {
6146     ASSERT(symbol->IsUndefined());
6147     symbol = i_isolate->factory()->NewSymbol();
6148     i::Handle<i::Symbol>::cast(symbol)->set_name(*i_name);
6149     i::JSObject::SetProperty(
6150         symbols, i_name, symbol, NONE, i::STRICT).Assert();
6151   }
6152   return Utils::ToLocal(i::Handle<i::Symbol>::cast(symbol));
6153 }
6154 
6155 
ForApi(Isolate * isolate,Local<String> name)6156 Local<Symbol> v8::Symbol::ForApi(Isolate* isolate, Local<String> name) {
6157   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6158   i::Handle<i::String> i_name = Utils::OpenHandle(*name);
6159   i::Handle<i::JSObject> registry = i_isolate->GetSymbolRegistry();
6160   i::Handle<i::String> part = i_isolate->factory()->for_api_string();
6161   i::Handle<i::JSObject> symbols =
6162       i::Handle<i::JSObject>::cast(
6163           i::Object::GetPropertyOrElement(registry, part).ToHandleChecked());
6164   i::Handle<i::Object> symbol =
6165       i::Object::GetPropertyOrElement(symbols, i_name).ToHandleChecked();
6166   if (!symbol->IsSymbol()) {
6167     ASSERT(symbol->IsUndefined());
6168     symbol = i_isolate->factory()->NewSymbol();
6169     i::Handle<i::Symbol>::cast(symbol)->set_name(*i_name);
6170     i::JSObject::SetProperty(
6171         symbols, i_name, symbol, NONE, i::STRICT).Assert();
6172   }
6173   return Utils::ToLocal(i::Handle<i::Symbol>::cast(symbol));
6174 }
6175 
6176 
New(Isolate * isolate,Local<String> name)6177 Local<Private> v8::Private::New(Isolate* isolate, Local<String> name) {
6178   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6179   EnsureInitializedForIsolate(i_isolate, "v8::Private::New()");
6180   LOG_API(i_isolate, "Private::New()");
6181   ENTER_V8(i_isolate);
6182   i::Handle<i::Symbol> symbol = i_isolate->factory()->NewPrivateSymbol();
6183   if (!name.IsEmpty()) symbol->set_name(*Utils::OpenHandle(*name));
6184   Local<Symbol> result = Utils::ToLocal(symbol);
6185   return v8::Handle<Private>(reinterpret_cast<Private*>(*result));
6186 }
6187 
6188 
ForApi(Isolate * isolate,Local<String> name)6189 Local<Private> v8::Private::ForApi(Isolate* isolate, Local<String> name) {
6190   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6191   i::Handle<i::String> i_name = Utils::OpenHandle(*name);
6192   i::Handle<i::JSObject> registry = i_isolate->GetSymbolRegistry();
6193   i::Handle<i::String> part = i_isolate->factory()->private_api_string();
6194   i::Handle<i::JSObject> privates =
6195       i::Handle<i::JSObject>::cast(
6196           i::Object::GetPropertyOrElement(registry, part).ToHandleChecked());
6197   i::Handle<i::Object> symbol =
6198       i::Object::GetPropertyOrElement(privates, i_name).ToHandleChecked();
6199   if (!symbol->IsSymbol()) {
6200     ASSERT(symbol->IsUndefined());
6201     symbol = i_isolate->factory()->NewPrivateSymbol();
6202     i::Handle<i::Symbol>::cast(symbol)->set_name(*i_name);
6203     i::JSObject::SetProperty(
6204         privates, i_name, symbol, NONE, i::STRICT).Assert();
6205   }
6206   Local<Symbol> result = Utils::ToLocal(i::Handle<i::Symbol>::cast(symbol));
6207   return v8::Handle<Private>(reinterpret_cast<Private*>(*result));
6208 }
6209 
6210 
New(Isolate * isolate,double value)6211 Local<Number> v8::Number::New(Isolate* isolate, double value) {
6212   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6213   ASSERT(internal_isolate->IsInitialized());
6214   if (std::isnan(value)) {
6215     // Introduce only canonical NaN value into the VM, to avoid signaling NaNs.
6216     value = i::OS::nan_value();
6217   }
6218   ENTER_V8(internal_isolate);
6219   i::Handle<i::Object> result = internal_isolate->factory()->NewNumber(value);
6220   return Utils::NumberToLocal(result);
6221 }
6222 
6223 
New(Isolate * isolate,int32_t value)6224 Local<Integer> v8::Integer::New(Isolate* isolate, int32_t value) {
6225   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6226   ASSERT(internal_isolate->IsInitialized());
6227   if (i::Smi::IsValid(value)) {
6228     return Utils::IntegerToLocal(i::Handle<i::Object>(i::Smi::FromInt(value),
6229                                                       internal_isolate));
6230   }
6231   ENTER_V8(internal_isolate);
6232   i::Handle<i::Object> result = internal_isolate->factory()->NewNumber(value);
6233   return Utils::IntegerToLocal(result);
6234 }
6235 
6236 
NewFromUnsigned(Isolate * isolate,uint32_t value)6237 Local<Integer> v8::Integer::NewFromUnsigned(Isolate* isolate, uint32_t value) {
6238   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6239   ASSERT(internal_isolate->IsInitialized());
6240   bool fits_into_int32_t = (value & (1 << 31)) == 0;
6241   if (fits_into_int32_t) {
6242     return Integer::New(isolate, static_cast<int32_t>(value));
6243   }
6244   ENTER_V8(internal_isolate);
6245   i::Handle<i::Object> result = internal_isolate->factory()->NewNumber(value);
6246   return Utils::IntegerToLocal(result);
6247 }
6248 
6249 
AddMessageListener(MessageCallback that,Handle<Value> data)6250 bool V8::AddMessageListener(MessageCallback that, Handle<Value> data) {
6251   i::Isolate* isolate = i::Isolate::Current();
6252   EnsureInitializedForIsolate(isolate, "v8::V8::AddMessageListener()");
6253   ON_BAILOUT(isolate, "v8::V8::AddMessageListener()", return false);
6254   ENTER_V8(isolate);
6255   i::HandleScope scope(isolate);
6256   NeanderArray listeners(isolate->factory()->message_listeners());
6257   NeanderObject obj(isolate, 2);
6258   obj.set(0, *isolate->factory()->NewForeign(FUNCTION_ADDR(that)));
6259   obj.set(1, data.IsEmpty() ? isolate->heap()->undefined_value()
6260           : *Utils::OpenHandle(*data));
6261   listeners.add(obj.value());
6262   return true;
6263 }
6264 
6265 
RemoveMessageListeners(MessageCallback that)6266 void V8::RemoveMessageListeners(MessageCallback that) {
6267   i::Isolate* isolate = i::Isolate::Current();
6268   EnsureInitializedForIsolate(isolate, "v8::V8::RemoveMessageListener()");
6269   ON_BAILOUT(isolate, "v8::V8::RemoveMessageListeners()", return);
6270   ENTER_V8(isolate);
6271   i::HandleScope scope(isolate);
6272   NeanderArray listeners(isolate->factory()->message_listeners());
6273   for (int i = 0; i < listeners.length(); i++) {
6274     if (listeners.get(i)->IsUndefined()) continue;  // skip deleted ones
6275 
6276     NeanderObject listener(i::JSObject::cast(listeners.get(i)));
6277     i::Handle<i::Foreign> callback_obj(i::Foreign::cast(listener.get(0)));
6278     if (callback_obj->foreign_address() == FUNCTION_ADDR(that)) {
6279       listeners.set(i, isolate->heap()->undefined_value());
6280     }
6281   }
6282 }
6283 
6284 
SetCaptureStackTraceForUncaughtExceptions(bool capture,int frame_limit,StackTrace::StackTraceOptions options)6285 void V8::SetCaptureStackTraceForUncaughtExceptions(
6286     bool capture,
6287     int frame_limit,
6288     StackTrace::StackTraceOptions options) {
6289   i::Isolate::Current()->SetCaptureStackTraceForUncaughtExceptions(
6290       capture,
6291       frame_limit,
6292       options);
6293 }
6294 
6295 
SetCounterFunction(CounterLookupCallback callback)6296 void V8::SetCounterFunction(CounterLookupCallback callback) {
6297   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
6298   // TODO(svenpanne) The Isolate should really be a parameter.
6299   if (isolate == NULL) return;
6300   isolate->stats_table()->SetCounterFunction(callback);
6301 }
6302 
6303 
SetCreateHistogramFunction(CreateHistogramCallback callback)6304 void V8::SetCreateHistogramFunction(CreateHistogramCallback callback) {
6305   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
6306   // TODO(svenpanne) The Isolate should really be a parameter.
6307   if (isolate == NULL) return;
6308   isolate->stats_table()->SetCreateHistogramFunction(callback);
6309   isolate->InitializeLoggingAndCounters();
6310   isolate->counters()->ResetHistograms();
6311 }
6312 
6313 
SetAddHistogramSampleFunction(AddHistogramSampleCallback callback)6314 void V8::SetAddHistogramSampleFunction(AddHistogramSampleCallback callback) {
6315   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
6316   // TODO(svenpanne) The Isolate should really be a parameter.
6317   if (isolate == NULL) return;
6318   isolate->stats_table()->
6319       SetAddHistogramSampleFunction(callback);
6320 }
6321 
SetFailedAccessCheckCallbackFunction(FailedAccessCheckCallback callback)6322 void V8::SetFailedAccessCheckCallbackFunction(
6323     FailedAccessCheckCallback callback) {
6324   i::Isolate* isolate = i::Isolate::Current();
6325   isolate->SetFailedAccessCheckCallback(callback);
6326 }
6327 
6328 
CollectAllGarbage(const char * gc_reason)6329 void Isolate::CollectAllGarbage(const char* gc_reason) {
6330   reinterpret_cast<i::Isolate*>(this)->heap()->CollectAllGarbage(
6331       i::Heap::kNoGCFlags, gc_reason);
6332 }
6333 
6334 
GetHeapProfiler()6335 HeapProfiler* Isolate::GetHeapProfiler() {
6336   i::HeapProfiler* heap_profiler =
6337       reinterpret_cast<i::Isolate*>(this)->heap_profiler();
6338   return reinterpret_cast<HeapProfiler*>(heap_profiler);
6339 }
6340 
6341 
GetCpuProfiler()6342 CpuProfiler* Isolate::GetCpuProfiler() {
6343   i::CpuProfiler* cpu_profiler =
6344       reinterpret_cast<i::Isolate*>(this)->cpu_profiler();
6345   return reinterpret_cast<CpuProfiler*>(cpu_profiler);
6346 }
6347 
6348 
InContext()6349 bool Isolate::InContext() {
6350   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6351   return isolate->context() != NULL;
6352 }
6353 
6354 
GetCurrentContext()6355 v8::Local<v8::Context> Isolate::GetCurrentContext() {
6356   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6357   i::Context* context = isolate->context();
6358   if (context == NULL) return Local<Context>();
6359   i::Context* native_context = context->global_object()->native_context();
6360   if (native_context == NULL) return Local<Context>();
6361   return Utils::ToLocal(i::Handle<i::Context>(native_context));
6362 }
6363 
6364 
GetCallingContext()6365 v8::Local<v8::Context> Isolate::GetCallingContext() {
6366   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6367   i::Handle<i::Object> calling = isolate->GetCallingNativeContext();
6368   if (calling.is_null()) return Local<Context>();
6369   return Utils::ToLocal(i::Handle<i::Context>::cast(calling));
6370 }
6371 
6372 
GetEnteredContext()6373 v8::Local<v8::Context> Isolate::GetEnteredContext() {
6374   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6375   i::Handle<i::Object> last =
6376       isolate->handle_scope_implementer()->LastEnteredContext();
6377   if (last.is_null()) return Local<Context>();
6378   return Utils::ToLocal(i::Handle<i::Context>::cast(last));
6379 }
6380 
6381 
ThrowException(v8::Local<v8::Value> value)6382 v8::Local<Value> Isolate::ThrowException(v8::Local<v8::Value> value) {
6383   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6384   ENTER_V8(isolate);
6385   // If we're passed an empty handle, we throw an undefined exception
6386   // to deal more gracefully with out of memory situations.
6387   if (value.IsEmpty()) {
6388     isolate->ScheduleThrow(isolate->heap()->undefined_value());
6389   } else {
6390     isolate->ScheduleThrow(*Utils::OpenHandle(*value));
6391   }
6392   return v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
6393 }
6394 
6395 
SetObjectGroupId(internal::Object ** object,UniqueId id)6396 void Isolate::SetObjectGroupId(internal::Object** object, UniqueId id) {
6397   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(this);
6398   internal_isolate->global_handles()->SetObjectGroupId(
6399       v8::internal::Handle<v8::internal::Object>(object).location(),
6400       id);
6401 }
6402 
6403 
SetReferenceFromGroup(UniqueId id,internal::Object ** object)6404 void Isolate::SetReferenceFromGroup(UniqueId id, internal::Object** object) {
6405   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(this);
6406   internal_isolate->global_handles()->SetReferenceFromGroup(
6407       id,
6408       v8::internal::Handle<v8::internal::Object>(object).location());
6409 }
6410 
6411 
SetReference(internal::Object ** parent,internal::Object ** child)6412 void Isolate::SetReference(internal::Object** parent,
6413                            internal::Object** child) {
6414   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(this);
6415   i::Object** parent_location =
6416       v8::internal::Handle<v8::internal::Object>(parent).location();
6417   internal_isolate->global_handles()->SetReference(
6418       reinterpret_cast<i::HeapObject**>(parent_location),
6419       v8::internal::Handle<v8::internal::Object>(child).location());
6420 }
6421 
6422 
AddGCPrologueCallback(GCPrologueCallback callback,GCType gc_type)6423 void Isolate::AddGCPrologueCallback(GCPrologueCallback callback,
6424                                     GCType gc_type) {
6425   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6426   isolate->heap()->AddGCPrologueCallback(callback, gc_type);
6427 }
6428 
6429 
RemoveGCPrologueCallback(GCPrologueCallback callback)6430 void Isolate::RemoveGCPrologueCallback(GCPrologueCallback callback) {
6431   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6432   isolate->heap()->RemoveGCPrologueCallback(callback);
6433 }
6434 
6435 
AddGCEpilogueCallback(GCEpilogueCallback callback,GCType gc_type)6436 void Isolate::AddGCEpilogueCallback(GCEpilogueCallback callback,
6437                                     GCType gc_type) {
6438   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6439   isolate->heap()->AddGCEpilogueCallback(callback, gc_type);
6440 }
6441 
6442 
RemoveGCEpilogueCallback(GCEpilogueCallback callback)6443 void Isolate::RemoveGCEpilogueCallback(GCEpilogueCallback callback) {
6444   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6445   isolate->heap()->RemoveGCEpilogueCallback(callback);
6446 }
6447 
6448 
AddGCPrologueCallback(GCPrologueCallback callback,GCType gc_type)6449 void V8::AddGCPrologueCallback(GCPrologueCallback callback, GCType gc_type) {
6450   i::Isolate* isolate = i::Isolate::Current();
6451   isolate->heap()->AddGCPrologueCallback(
6452       reinterpret_cast<v8::Isolate::GCPrologueCallback>(callback),
6453       gc_type,
6454       false);
6455 }
6456 
6457 
RemoveGCPrologueCallback(GCPrologueCallback callback)6458 void V8::RemoveGCPrologueCallback(GCPrologueCallback callback) {
6459   i::Isolate* isolate = i::Isolate::Current();
6460   isolate->heap()->RemoveGCPrologueCallback(
6461       reinterpret_cast<v8::Isolate::GCPrologueCallback>(callback));
6462 }
6463 
6464 
AddGCEpilogueCallback(GCEpilogueCallback callback,GCType gc_type)6465 void V8::AddGCEpilogueCallback(GCEpilogueCallback callback, GCType gc_type) {
6466   i::Isolate* isolate = i::Isolate::Current();
6467   isolate->heap()->AddGCEpilogueCallback(
6468       reinterpret_cast<v8::Isolate::GCEpilogueCallback>(callback),
6469       gc_type,
6470       false);
6471 }
6472 
6473 
RemoveGCEpilogueCallback(GCEpilogueCallback callback)6474 void V8::RemoveGCEpilogueCallback(GCEpilogueCallback callback) {
6475   i::Isolate* isolate = i::Isolate::Current();
6476   isolate->heap()->RemoveGCEpilogueCallback(
6477       reinterpret_cast<v8::Isolate::GCEpilogueCallback>(callback));
6478 }
6479 
6480 
AddMemoryAllocationCallback(MemoryAllocationCallback callback,ObjectSpace space,AllocationAction action)6481 void V8::AddMemoryAllocationCallback(MemoryAllocationCallback callback,
6482                                      ObjectSpace space,
6483                                      AllocationAction action) {
6484   i::Isolate* isolate = i::Isolate::Current();
6485   isolate->memory_allocator()->AddMemoryAllocationCallback(
6486       callback, space, action);
6487 }
6488 
6489 
RemoveMemoryAllocationCallback(MemoryAllocationCallback callback)6490 void V8::RemoveMemoryAllocationCallback(MemoryAllocationCallback callback) {
6491   i::Isolate* isolate = i::Isolate::Current();
6492   isolate->memory_allocator()->RemoveMemoryAllocationCallback(
6493       callback);
6494 }
6495 
6496 
TerminateExecution(Isolate * isolate)6497 void V8::TerminateExecution(Isolate* isolate) {
6498   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6499   i_isolate->stack_guard()->RequestTerminateExecution();
6500 }
6501 
6502 
IsExecutionTerminating(Isolate * isolate)6503 bool V8::IsExecutionTerminating(Isolate* isolate) {
6504   i::Isolate* i_isolate = isolate != NULL ?
6505       reinterpret_cast<i::Isolate*>(isolate) : i::Isolate::Current();
6506   return IsExecutionTerminatingCheck(i_isolate);
6507 }
6508 
6509 
CancelTerminateExecution(Isolate * isolate)6510 void V8::CancelTerminateExecution(Isolate* isolate) {
6511   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6512   i_isolate->stack_guard()->ClearTerminateExecution();
6513   i_isolate->CancelTerminateExecution();
6514 }
6515 
6516 
RequestInterrupt(InterruptCallback callback,void * data)6517 void Isolate::RequestInterrupt(InterruptCallback callback, void* data) {
6518   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(this);
6519   i_isolate->set_api_interrupt_callback(callback);
6520   i_isolate->set_api_interrupt_callback_data(data);
6521   i_isolate->stack_guard()->RequestApiInterrupt();
6522 }
6523 
6524 
ClearInterrupt()6525 void Isolate::ClearInterrupt() {
6526   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(this);
6527   i_isolate->stack_guard()->ClearApiInterrupt();
6528   i_isolate->set_api_interrupt_callback(NULL);
6529   i_isolate->set_api_interrupt_callback_data(NULL);
6530 }
6531 
6532 
RequestGarbageCollectionForTesting(GarbageCollectionType type)6533 void Isolate::RequestGarbageCollectionForTesting(GarbageCollectionType type) {
6534   CHECK(i::FLAG_expose_gc);
6535   if (type == kMinorGarbageCollection) {
6536     reinterpret_cast<i::Isolate*>(this)->heap()->CollectGarbage(
6537         i::NEW_SPACE, "Isolate::RequestGarbageCollection",
6538         kGCCallbackFlagForced);
6539   } else {
6540     ASSERT_EQ(kFullGarbageCollection, type);
6541     reinterpret_cast<i::Isolate*>(this)->heap()->CollectAllGarbage(
6542         i::Heap::kAbortIncrementalMarkingMask,
6543         "Isolate::RequestGarbageCollection", kGCCallbackFlagForced);
6544   }
6545 }
6546 
6547 
GetCurrent()6548 Isolate* Isolate::GetCurrent() {
6549   i::Isolate* isolate = i::Isolate::UncheckedCurrent();
6550   return reinterpret_cast<Isolate*>(isolate);
6551 }
6552 
6553 
New()6554 Isolate* Isolate::New() {
6555   i::Isolate* isolate = new i::Isolate();
6556   return reinterpret_cast<Isolate*>(isolate);
6557 }
6558 
6559 
Dispose()6560 void Isolate::Dispose() {
6561   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6562   if (!Utils::ApiCheck(!isolate->IsInUse(),
6563                        "v8::Isolate::Dispose()",
6564                        "Disposing the isolate that is entered by a thread.")) {
6565     return;
6566   }
6567   isolate->TearDown();
6568 }
6569 
6570 
Enter()6571 void Isolate::Enter() {
6572   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6573   isolate->Enter();
6574 }
6575 
6576 
Exit()6577 void Isolate::Exit() {
6578   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6579   isolate->Exit();
6580 }
6581 
6582 
DisallowJavascriptExecutionScope(Isolate * isolate,Isolate::DisallowJavascriptExecutionScope::OnFailure on_failure)6583 Isolate::DisallowJavascriptExecutionScope::DisallowJavascriptExecutionScope(
6584     Isolate* isolate,
6585     Isolate::DisallowJavascriptExecutionScope::OnFailure on_failure)
6586     : on_failure_(on_failure) {
6587   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6588   if (on_failure_ == CRASH_ON_FAILURE) {
6589     internal_ = reinterpret_cast<void*>(
6590         new i::DisallowJavascriptExecution(i_isolate));
6591   } else {
6592     ASSERT_EQ(THROW_ON_FAILURE, on_failure);
6593     internal_ = reinterpret_cast<void*>(
6594         new i::ThrowOnJavascriptExecution(i_isolate));
6595   }
6596 }
6597 
6598 
~DisallowJavascriptExecutionScope()6599 Isolate::DisallowJavascriptExecutionScope::~DisallowJavascriptExecutionScope() {
6600   if (on_failure_ == CRASH_ON_FAILURE) {
6601     delete reinterpret_cast<i::DisallowJavascriptExecution*>(internal_);
6602   } else {
6603     delete reinterpret_cast<i::ThrowOnJavascriptExecution*>(internal_);
6604   }
6605 }
6606 
6607 
AllowJavascriptExecutionScope(Isolate * isolate)6608 Isolate::AllowJavascriptExecutionScope::AllowJavascriptExecutionScope(
6609     Isolate* isolate) {
6610   i::Isolate* i_isolate = reinterpret_cast<i::Isolate*>(isolate);
6611   internal_assert_ = reinterpret_cast<void*>(
6612       new i::AllowJavascriptExecution(i_isolate));
6613   internal_throws_ = reinterpret_cast<void*>(
6614       new i::NoThrowOnJavascriptExecution(i_isolate));
6615 }
6616 
6617 
~AllowJavascriptExecutionScope()6618 Isolate::AllowJavascriptExecutionScope::~AllowJavascriptExecutionScope() {
6619   delete reinterpret_cast<i::AllowJavascriptExecution*>(internal_assert_);
6620   delete reinterpret_cast<i::NoThrowOnJavascriptExecution*>(internal_throws_);
6621 }
6622 
6623 
SuppressMicrotaskExecutionScope(Isolate * isolate)6624 Isolate::SuppressMicrotaskExecutionScope::SuppressMicrotaskExecutionScope(
6625     Isolate* isolate)
6626     : isolate_(reinterpret_cast<i::Isolate*>(isolate)) {
6627   isolate_->handle_scope_implementer()->IncrementCallDepth();
6628 }
6629 
6630 
~SuppressMicrotaskExecutionScope()6631 Isolate::SuppressMicrotaskExecutionScope::~SuppressMicrotaskExecutionScope() {
6632   isolate_->handle_scope_implementer()->DecrementCallDepth();
6633 }
6634 
6635 
GetHeapStatistics(HeapStatistics * heap_statistics)6636 void Isolate::GetHeapStatistics(HeapStatistics* heap_statistics) {
6637   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6638   if (!isolate->IsInitialized()) {
6639     heap_statistics->total_heap_size_ = 0;
6640     heap_statistics->total_heap_size_executable_ = 0;
6641     heap_statistics->total_physical_size_ = 0;
6642     heap_statistics->used_heap_size_ = 0;
6643     heap_statistics->heap_size_limit_ = 0;
6644     return;
6645   }
6646   i::Heap* heap = isolate->heap();
6647   heap_statistics->total_heap_size_ = heap->CommittedMemory();
6648   heap_statistics->total_heap_size_executable_ =
6649       heap->CommittedMemoryExecutable();
6650   heap_statistics->total_physical_size_ = heap->CommittedPhysicalMemory();
6651   heap_statistics->used_heap_size_ = heap->SizeOfObjects();
6652   heap_statistics->heap_size_limit_ = heap->MaxReserved();
6653 }
6654 
6655 
SetEventLogger(LogEventCallback that)6656 void Isolate::SetEventLogger(LogEventCallback that) {
6657   // Do not overwrite the event logger if we want to log explicitly.
6658   if (i::FLAG_log_timer_events) return;
6659   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6660   isolate->set_event_logger(that);
6661 }
6662 
6663 
AddCallCompletedCallback(CallCompletedCallback callback)6664 void Isolate::AddCallCompletedCallback(CallCompletedCallback callback) {
6665   if (callback == NULL) return;
6666   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6667   isolate->AddCallCompletedCallback(callback);
6668 }
6669 
6670 
RemoveCallCompletedCallback(CallCompletedCallback callback)6671 void Isolate::RemoveCallCompletedCallback(CallCompletedCallback callback) {
6672   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6673   isolate->RemoveCallCompletedCallback(callback);
6674 }
6675 
6676 
RunMicrotasks()6677 void Isolate::RunMicrotasks() {
6678   reinterpret_cast<i::Isolate*>(this)->RunMicrotasks();
6679 }
6680 
6681 
EnqueueMicrotask(Handle<Function> microtask)6682 void Isolate::EnqueueMicrotask(Handle<Function> microtask) {
6683   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6684   isolate->EnqueueMicrotask(Utils::OpenHandle(*microtask));
6685 }
6686 
6687 
EnqueueMicrotask(MicrotaskCallback microtask,void * data)6688 void Isolate::EnqueueMicrotask(MicrotaskCallback microtask, void* data) {
6689   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6690   i::HandleScope scope(isolate);
6691   i::Handle<i::CallHandlerInfo> callback_info =
6692       i::Handle<i::CallHandlerInfo>::cast(
6693           isolate->factory()->NewStruct(i::CALL_HANDLER_INFO_TYPE));
6694   SET_FIELD_WRAPPED(callback_info, set_callback, microtask);
6695   SET_FIELD_WRAPPED(callback_info, set_data, data);
6696   isolate->EnqueueMicrotask(callback_info);
6697 }
6698 
6699 
SetAutorunMicrotasks(bool autorun)6700 void Isolate::SetAutorunMicrotasks(bool autorun) {
6701   reinterpret_cast<i::Isolate*>(this)->set_autorun_microtasks(autorun);
6702 }
6703 
6704 
WillAutorunMicrotasks() const6705 bool Isolate::WillAutorunMicrotasks() const {
6706   return reinterpret_cast<const i::Isolate*>(this)->autorun_microtasks();
6707 }
6708 
6709 
SetCounterFunction(CounterLookupCallback callback)6710 void Isolate::SetCounterFunction(CounterLookupCallback callback) {
6711   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6712   isolate->stats_table()->SetCounterFunction(callback);
6713   isolate->InitializeLoggingAndCounters();
6714   isolate->counters()->ResetCounters();
6715 }
6716 
6717 
SetCreateHistogramFunction(CreateHistogramCallback callback)6718 void Isolate::SetCreateHistogramFunction(CreateHistogramCallback callback) {
6719   i::Isolate* isolate = reinterpret_cast<i::Isolate*>(this);
6720   isolate->stats_table()->SetCreateHistogramFunction(callback);
6721   isolate->InitializeLoggingAndCounters();
6722   isolate->counters()->ResetHistograms();
6723 }
6724 
6725 
SetAddHistogramSampleFunction(AddHistogramSampleCallback callback)6726 void Isolate::SetAddHistogramSampleFunction(
6727     AddHistogramSampleCallback callback) {
6728   reinterpret_cast<i::Isolate*>(this)
6729       ->stats_table()
6730       ->SetAddHistogramSampleFunction(callback);
6731 }
6732 
6733 
Utf8Value(v8::Handle<v8::Value> obj)6734 String::Utf8Value::Utf8Value(v8::Handle<v8::Value> obj)
6735     : str_(NULL), length_(0) {
6736   i::Isolate* isolate = i::Isolate::Current();
6737   if (obj.IsEmpty()) return;
6738   ENTER_V8(isolate);
6739   i::HandleScope scope(isolate);
6740   TryCatch try_catch;
6741   Handle<String> str = obj->ToString();
6742   if (str.IsEmpty()) return;
6743   i::Handle<i::String> i_str = Utils::OpenHandle(*str);
6744   length_ = v8::Utf8Length(*i_str, isolate);
6745   str_ = i::NewArray<char>(length_ + 1);
6746   str->WriteUtf8(str_);
6747 }
6748 
6749 
~Utf8Value()6750 String::Utf8Value::~Utf8Value() {
6751   i::DeleteArray(str_);
6752 }
6753 
6754 
Value(v8::Handle<v8::Value> obj)6755 String::Value::Value(v8::Handle<v8::Value> obj)
6756     : str_(NULL), length_(0) {
6757   i::Isolate* isolate = i::Isolate::Current();
6758   if (obj.IsEmpty()) return;
6759   ENTER_V8(isolate);
6760   i::HandleScope scope(isolate);
6761   TryCatch try_catch;
6762   Handle<String> str = obj->ToString();
6763   if (str.IsEmpty()) return;
6764   length_ = str->Length();
6765   str_ = i::NewArray<uint16_t>(length_ + 1);
6766   str->Write(str_);
6767 }
6768 
6769 
~Value()6770 String::Value::~Value() {
6771   i::DeleteArray(str_);
6772 }
6773 
6774 
RangeError(v8::Handle<v8::String> raw_message)6775 Local<Value> Exception::RangeError(v8::Handle<v8::String> raw_message) {
6776   i::Isolate* isolate = i::Isolate::Current();
6777   LOG_API(isolate, "RangeError");
6778   ON_BAILOUT(isolate, "v8::Exception::RangeError()", return Local<Value>());
6779   ENTER_V8(isolate);
6780   i::Object* error;
6781   {
6782     i::HandleScope scope(isolate);
6783     i::Handle<i::String> message = Utils::OpenHandle(*raw_message);
6784     i::Handle<i::Object> result = isolate->factory()->NewRangeError(message);
6785     error = *result;
6786   }
6787   i::Handle<i::Object> result(error, isolate);
6788   return Utils::ToLocal(result);
6789 }
6790 
6791 
ReferenceError(v8::Handle<v8::String> raw_message)6792 Local<Value> Exception::ReferenceError(v8::Handle<v8::String> raw_message) {
6793   i::Isolate* isolate = i::Isolate::Current();
6794   LOG_API(isolate, "ReferenceError");
6795   ON_BAILOUT(isolate, "v8::Exception::ReferenceError()", return Local<Value>());
6796   ENTER_V8(isolate);
6797   i::Object* error;
6798   {
6799     i::HandleScope scope(isolate);
6800     i::Handle<i::String> message = Utils::OpenHandle(*raw_message);
6801     i::Handle<i::Object> result =
6802         isolate->factory()->NewReferenceError(message);
6803     error = *result;
6804   }
6805   i::Handle<i::Object> result(error, isolate);
6806   return Utils::ToLocal(result);
6807 }
6808 
6809 
SyntaxError(v8::Handle<v8::String> raw_message)6810 Local<Value> Exception::SyntaxError(v8::Handle<v8::String> raw_message) {
6811   i::Isolate* isolate = i::Isolate::Current();
6812   LOG_API(isolate, "SyntaxError");
6813   ON_BAILOUT(isolate, "v8::Exception::SyntaxError()", return Local<Value>());
6814   ENTER_V8(isolate);
6815   i::Object* error;
6816   {
6817     i::HandleScope scope(isolate);
6818     i::Handle<i::String> message = Utils::OpenHandle(*raw_message);
6819     i::Handle<i::Object> result = isolate->factory()->NewSyntaxError(message);
6820     error = *result;
6821   }
6822   i::Handle<i::Object> result(error, isolate);
6823   return Utils::ToLocal(result);
6824 }
6825 
6826 
TypeError(v8::Handle<v8::String> raw_message)6827 Local<Value> Exception::TypeError(v8::Handle<v8::String> raw_message) {
6828   i::Isolate* isolate = i::Isolate::Current();
6829   LOG_API(isolate, "TypeError");
6830   ON_BAILOUT(isolate, "v8::Exception::TypeError()", return Local<Value>());
6831   ENTER_V8(isolate);
6832   i::Object* error;
6833   {
6834     i::HandleScope scope(isolate);
6835     i::Handle<i::String> message = Utils::OpenHandle(*raw_message);
6836     i::Handle<i::Object> result = isolate->factory()->NewTypeError(message);
6837     error = *result;
6838   }
6839   i::Handle<i::Object> result(error, isolate);
6840   return Utils::ToLocal(result);
6841 }
6842 
6843 
Error(v8::Handle<v8::String> raw_message)6844 Local<Value> Exception::Error(v8::Handle<v8::String> raw_message) {
6845   i::Isolate* isolate = i::Isolate::Current();
6846   LOG_API(isolate, "Error");
6847   ON_BAILOUT(isolate, "v8::Exception::Error()", return Local<Value>());
6848   ENTER_V8(isolate);
6849   i::Object* error;
6850   {
6851     i::HandleScope scope(isolate);
6852     i::Handle<i::String> message = Utils::OpenHandle(*raw_message);
6853     i::Handle<i::Object> result = isolate->factory()->NewError(message);
6854     error = *result;
6855   }
6856   i::Handle<i::Object> result(error, isolate);
6857   return Utils::ToLocal(result);
6858 }
6859 
6860 
6861 // --- D e b u g   S u p p o r t ---
6862 
SetDebugEventListener(EventCallback that,Handle<Value> data)6863 bool Debug::SetDebugEventListener(EventCallback that, Handle<Value> data) {
6864   i::Isolate* isolate = i::Isolate::Current();
6865   EnsureInitializedForIsolate(isolate, "v8::Debug::SetDebugEventListener()");
6866   ON_BAILOUT(isolate, "v8::Debug::SetDebugEventListener()", return false);
6867   ENTER_V8(isolate);
6868   i::HandleScope scope(isolate);
6869   i::Handle<i::Object> foreign = isolate->factory()->undefined_value();
6870   if (that != NULL) {
6871     foreign = isolate->factory()->NewForeign(FUNCTION_ADDR(that));
6872   }
6873   isolate->debug()->SetEventListener(foreign,
6874                                      Utils::OpenHandle(*data, true));
6875   return true;
6876 }
6877 
6878 
DebugBreak(Isolate * isolate)6879 void Debug::DebugBreak(Isolate* isolate) {
6880   reinterpret_cast<i::Isolate*>(isolate)->stack_guard()->RequestDebugBreak();
6881 }
6882 
6883 
CancelDebugBreak(Isolate * isolate)6884 void Debug::CancelDebugBreak(Isolate* isolate) {
6885   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6886   internal_isolate->stack_guard()->ClearDebugBreak();
6887 }
6888 
6889 
DebugBreakForCommand(Isolate * isolate,ClientData * data)6890 void Debug::DebugBreakForCommand(Isolate* isolate, ClientData* data) {
6891   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6892   internal_isolate->debug()->EnqueueDebugCommand(data);
6893 }
6894 
6895 
SetMessageHandler(v8::Debug::MessageHandler handler)6896 void Debug::SetMessageHandler(v8::Debug::MessageHandler handler) {
6897   i::Isolate* isolate = i::Isolate::Current();
6898   EnsureInitializedForIsolate(isolate, "v8::Debug::SetMessageHandler");
6899   ENTER_V8(isolate);
6900   isolate->debug()->SetMessageHandler(handler);
6901 }
6902 
6903 
SendCommand(Isolate * isolate,const uint16_t * command,int length,ClientData * client_data)6904 void Debug::SendCommand(Isolate* isolate,
6905                         const uint16_t* command,
6906                         int length,
6907                         ClientData* client_data) {
6908   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6909   internal_isolate->debug()->EnqueueCommandMessage(
6910       i::Vector<const uint16_t>(command, length), client_data);
6911 }
6912 
6913 
Call(v8::Handle<v8::Function> fun,v8::Handle<v8::Value> data)6914 Local<Value> Debug::Call(v8::Handle<v8::Function> fun,
6915                          v8::Handle<v8::Value> data) {
6916   i::Isolate* isolate = i::Isolate::Current();
6917   if (!isolate->IsInitialized()) return Local<Value>();
6918   ON_BAILOUT(isolate, "v8::Debug::Call()", return Local<Value>());
6919   ENTER_V8(isolate);
6920   i::MaybeHandle<i::Object> maybe_result;
6921   EXCEPTION_PREAMBLE(isolate);
6922   if (data.IsEmpty()) {
6923     maybe_result = isolate->debug()->Call(
6924         Utils::OpenHandle(*fun), isolate->factory()->undefined_value());
6925   } else {
6926     maybe_result = isolate->debug()->Call(
6927         Utils::OpenHandle(*fun), Utils::OpenHandle(*data));
6928   }
6929   i::Handle<i::Object> result;
6930   has_pending_exception = !maybe_result.ToHandle(&result);
6931   EXCEPTION_BAILOUT_CHECK(isolate, Local<Value>());
6932   return Utils::ToLocal(result);
6933 }
6934 
6935 
GetMirror(v8::Handle<v8::Value> obj)6936 Local<Value> Debug::GetMirror(v8::Handle<v8::Value> obj) {
6937   i::Isolate* isolate = i::Isolate::Current();
6938   if (!isolate->IsInitialized()) return Local<Value>();
6939   ON_BAILOUT(isolate, "v8::Debug::GetMirror()", return Local<Value>());
6940   ENTER_V8(isolate);
6941   v8::EscapableHandleScope scope(reinterpret_cast<Isolate*>(isolate));
6942   i::Debug* isolate_debug = isolate->debug();
6943   EXCEPTION_PREAMBLE(isolate);
6944   has_pending_exception = !isolate_debug->Load();
6945   v8::Local<v8::Value> result;
6946   if (!has_pending_exception) {
6947     i::Handle<i::JSObject> debug(
6948         isolate_debug->debug_context()->global_object());
6949     i::Handle<i::String> name = isolate->factory()->InternalizeOneByteString(
6950         STATIC_ASCII_VECTOR("MakeMirror"));
6951     i::Handle<i::Object> fun_obj =
6952         i::Object::GetProperty(debug, name).ToHandleChecked();
6953     i::Handle<i::JSFunction> fun = i::Handle<i::JSFunction>::cast(fun_obj);
6954     v8::Handle<v8::Function> v8_fun = Utils::ToLocal(fun);
6955     const int kArgc = 1;
6956     v8::Handle<v8::Value> argv[kArgc] = { obj };
6957     result = v8_fun->Call(Utils::ToLocal(debug), kArgc, argv);
6958     has_pending_exception = result.IsEmpty();
6959   }
6960   EXCEPTION_BAILOUT_CHECK(isolate, Local<Value>());
6961   return scope.Escape(result);
6962 }
6963 
6964 
ProcessDebugMessages()6965 void Debug::ProcessDebugMessages() {
6966   i::Isolate::Current()->debug()->ProcessDebugMessages(true);
6967 }
6968 
6969 
GetDebugContext()6970 Local<Context> Debug::GetDebugContext() {
6971   i::Isolate* isolate = i::Isolate::Current();
6972   EnsureInitializedForIsolate(isolate, "v8::Debug::GetDebugContext()");
6973   ENTER_V8(isolate);
6974   return Utils::ToLocal(i::Isolate::Current()->debug()->GetDebugContext());
6975 }
6976 
6977 
SetLiveEditEnabled(Isolate * isolate,bool enable)6978 void Debug::SetLiveEditEnabled(Isolate* isolate, bool enable) {
6979   i::Isolate* internal_isolate = reinterpret_cast<i::Isolate*>(isolate);
6980   internal_isolate->debug()->set_live_edit_enabled(enable);
6981 }
6982 
6983 
GetFunctionName() const6984 Handle<String> CpuProfileNode::GetFunctionName() const {
6985   i::Isolate* isolate = i::Isolate::Current();
6986   const i::ProfileNode* node = reinterpret_cast<const i::ProfileNode*>(this);
6987   const i::CodeEntry* entry = node->entry();
6988   i::Handle<i::String> name =
6989       isolate->factory()->InternalizeUtf8String(entry->name());
6990   if (!entry->has_name_prefix()) {
6991     return ToApiHandle<String>(name);
6992   } else {
6993     // We do not expect this to fail. Change this if it does.
6994     i::Handle<i::String> cons = isolate->factory()->NewConsString(
6995         isolate->factory()->InternalizeUtf8String(entry->name_prefix()),
6996         name).ToHandleChecked();
6997     return ToApiHandle<String>(cons);
6998   }
6999 }
7000 
7001 
GetScriptId() const7002 int CpuProfileNode::GetScriptId() const {
7003   const i::ProfileNode* node = reinterpret_cast<const i::ProfileNode*>(this);
7004   const i::CodeEntry* entry = node->entry();
7005   return entry->script_id();
7006 }
7007 
7008 
GetScriptResourceName() const7009 Handle<String> CpuProfileNode::GetScriptResourceName() const {
7010   i::Isolate* isolate = i::Isolate::Current();
7011   const i::ProfileNode* node = reinterpret_cast<const i::ProfileNode*>(this);
7012   return ToApiHandle<String>(isolate->factory()->InternalizeUtf8String(
7013       node->entry()->resource_name()));
7014 }
7015 
7016 
GetLineNumber() const7017 int CpuProfileNode::GetLineNumber() const {
7018   return reinterpret_cast<const i::ProfileNode*>(this)->entry()->line_number();
7019 }
7020 
7021 
GetColumnNumber() const7022 int CpuProfileNode::GetColumnNumber() const {
7023   return reinterpret_cast<const i::ProfileNode*>(this)->
7024       entry()->column_number();
7025 }
7026 
7027 
GetBailoutReason() const7028 const char* CpuProfileNode::GetBailoutReason() const {
7029   const i::ProfileNode* node = reinterpret_cast<const i::ProfileNode*>(this);
7030   return node->entry()->bailout_reason();
7031 }
7032 
7033 
GetHitCount() const7034 unsigned CpuProfileNode::GetHitCount() const {
7035   return reinterpret_cast<const i::ProfileNode*>(this)->self_ticks();
7036 }
7037 
7038 
GetCallUid() const7039 unsigned CpuProfileNode::GetCallUid() const {
7040   return reinterpret_cast<const i::ProfileNode*>(this)->entry()->GetCallUid();
7041 }
7042 
7043 
GetNodeId() const7044 unsigned CpuProfileNode::GetNodeId() const {
7045   return reinterpret_cast<const i::ProfileNode*>(this)->id();
7046 }
7047 
7048 
GetChildrenCount() const7049 int CpuProfileNode::GetChildrenCount() const {
7050   return reinterpret_cast<const i::ProfileNode*>(this)->children()->length();
7051 }
7052 
7053 
GetChild(int index) const7054 const CpuProfileNode* CpuProfileNode::GetChild(int index) const {
7055   const i::ProfileNode* child =
7056       reinterpret_cast<const i::ProfileNode*>(this)->children()->at(index);
7057   return reinterpret_cast<const CpuProfileNode*>(child);
7058 }
7059 
7060 
Delete()7061 void CpuProfile::Delete() {
7062   i::Isolate* isolate = i::Isolate::Current();
7063   i::CpuProfiler* profiler = isolate->cpu_profiler();
7064   ASSERT(profiler != NULL);
7065   profiler->DeleteProfile(reinterpret_cast<i::CpuProfile*>(this));
7066 }
7067 
7068 
GetTitle() const7069 Handle<String> CpuProfile::GetTitle() const {
7070   i::Isolate* isolate = i::Isolate::Current();
7071   const i::CpuProfile* profile = reinterpret_cast<const i::CpuProfile*>(this);
7072   return ToApiHandle<String>(isolate->factory()->InternalizeUtf8String(
7073       profile->title()));
7074 }
7075 
7076 
GetTopDownRoot() const7077 const CpuProfileNode* CpuProfile::GetTopDownRoot() const {
7078   const i::CpuProfile* profile = reinterpret_cast<const i::CpuProfile*>(this);
7079   return reinterpret_cast<const CpuProfileNode*>(profile->top_down()->root());
7080 }
7081 
7082 
GetSample(int index) const7083 const CpuProfileNode* CpuProfile::GetSample(int index) const {
7084   const i::CpuProfile* profile = reinterpret_cast<const i::CpuProfile*>(this);
7085   return reinterpret_cast<const CpuProfileNode*>(profile->sample(index));
7086 }
7087 
7088 
GetSampleTimestamp(int index) const7089 int64_t CpuProfile::GetSampleTimestamp(int index) const {
7090   const i::CpuProfile* profile = reinterpret_cast<const i::CpuProfile*>(this);
7091   return (profile->sample_timestamp(index) - i::TimeTicks()).InMicroseconds();
7092 }
7093 
7094 
GetStartTime() const7095 int64_t CpuProfile::GetStartTime() const {
7096   const i::CpuProfile* profile = reinterpret_cast<const i::CpuProfile*>(this);
7097   return (profile->start_time() - i::TimeTicks()).InMicroseconds();
7098 }
7099 
7100 
GetEndTime() const7101 int64_t CpuProfile::GetEndTime() const {
7102   const i::CpuProfile* profile = reinterpret_cast<const i::CpuProfile*>(this);
7103   return (profile->end_time() - i::TimeTicks()).InMicroseconds();
7104 }
7105 
7106 
GetSamplesCount() const7107 int CpuProfile::GetSamplesCount() const {
7108   return reinterpret_cast<const i::CpuProfile*>(this)->samples_count();
7109 }
7110 
7111 
SetSamplingInterval(int us)7112 void CpuProfiler::SetSamplingInterval(int us) {
7113   ASSERT(us >= 0);
7114   return reinterpret_cast<i::CpuProfiler*>(this)->set_sampling_interval(
7115       i::TimeDelta::FromMicroseconds(us));
7116 }
7117 
7118 
StartProfiling(Handle<String> title,bool record_samples)7119 void CpuProfiler::StartProfiling(Handle<String> title, bool record_samples) {
7120   reinterpret_cast<i::CpuProfiler*>(this)->StartProfiling(
7121       *Utils::OpenHandle(*title), record_samples);
7122 }
7123 
7124 
StartCpuProfiling(Handle<String> title,bool record_samples)7125 void CpuProfiler::StartCpuProfiling(Handle<String> title, bool record_samples) {
7126   StartProfiling(title, record_samples);
7127 }
7128 
7129 
StopProfiling(Handle<String> title)7130 CpuProfile* CpuProfiler::StopProfiling(Handle<String> title) {
7131   return reinterpret_cast<CpuProfile*>(
7132       reinterpret_cast<i::CpuProfiler*>(this)->StopProfiling(
7133           *Utils::OpenHandle(*title)));
7134 }
7135 
7136 
StopCpuProfiling(Handle<String> title)7137 const CpuProfile* CpuProfiler::StopCpuProfiling(Handle<String> title) {
7138   return StopProfiling(title);
7139 }
7140 
7141 
SetIdle(bool is_idle)7142 void CpuProfiler::SetIdle(bool is_idle) {
7143   i::Isolate* isolate = reinterpret_cast<i::CpuProfiler*>(this)->isolate();
7144   i::StateTag state = isolate->current_vm_state();
7145   ASSERT(state == i::EXTERNAL || state == i::IDLE);
7146   if (isolate->js_entry_sp() != NULL) return;
7147   if (is_idle) {
7148     isolate->set_current_vm_state(i::IDLE);
7149   } else if (state == i::IDLE) {
7150     isolate->set_current_vm_state(i::EXTERNAL);
7151   }
7152 }
7153 
7154 
ToInternal(const HeapGraphEdge * edge)7155 static i::HeapGraphEdge* ToInternal(const HeapGraphEdge* edge) {
7156   return const_cast<i::HeapGraphEdge*>(
7157       reinterpret_cast<const i::HeapGraphEdge*>(edge));
7158 }
7159 
7160 
GetType() const7161 HeapGraphEdge::Type HeapGraphEdge::GetType() const {
7162   return static_cast<HeapGraphEdge::Type>(ToInternal(this)->type());
7163 }
7164 
7165 
GetName() const7166 Handle<Value> HeapGraphEdge::GetName() const {
7167   i::Isolate* isolate = i::Isolate::Current();
7168   i::HeapGraphEdge* edge = ToInternal(this);
7169   switch (edge->type()) {
7170     case i::HeapGraphEdge::kContextVariable:
7171     case i::HeapGraphEdge::kInternal:
7172     case i::HeapGraphEdge::kProperty:
7173     case i::HeapGraphEdge::kShortcut:
7174     case i::HeapGraphEdge::kWeak:
7175       return ToApiHandle<String>(
7176           isolate->factory()->InternalizeUtf8String(edge->name()));
7177     case i::HeapGraphEdge::kElement:
7178     case i::HeapGraphEdge::kHidden:
7179       return ToApiHandle<Number>(
7180           isolate->factory()->NewNumberFromInt(edge->index()));
7181     default: UNREACHABLE();
7182   }
7183   return v8::Undefined(reinterpret_cast<v8::Isolate*>(isolate));
7184 }
7185 
7186 
GetFromNode() const7187 const HeapGraphNode* HeapGraphEdge::GetFromNode() const {
7188   const i::HeapEntry* from = ToInternal(this)->from();
7189   return reinterpret_cast<const HeapGraphNode*>(from);
7190 }
7191 
7192 
GetToNode() const7193 const HeapGraphNode* HeapGraphEdge::GetToNode() const {
7194   const i::HeapEntry* to = ToInternal(this)->to();
7195   return reinterpret_cast<const HeapGraphNode*>(to);
7196 }
7197 
7198 
ToInternal(const HeapGraphNode * entry)7199 static i::HeapEntry* ToInternal(const HeapGraphNode* entry) {
7200   return const_cast<i::HeapEntry*>(
7201       reinterpret_cast<const i::HeapEntry*>(entry));
7202 }
7203 
7204 
GetType() const7205 HeapGraphNode::Type HeapGraphNode::GetType() const {
7206   return static_cast<HeapGraphNode::Type>(ToInternal(this)->type());
7207 }
7208 
7209 
GetName() const7210 Handle<String> HeapGraphNode::GetName() const {
7211   i::Isolate* isolate = i::Isolate::Current();
7212   return ToApiHandle<String>(
7213       isolate->factory()->InternalizeUtf8String(ToInternal(this)->name()));
7214 }
7215 
7216 
GetId() const7217 SnapshotObjectId HeapGraphNode::GetId() const {
7218   return ToInternal(this)->id();
7219 }
7220 
7221 
GetSelfSize() const7222 int HeapGraphNode::GetSelfSize() const {
7223   size_t size = ToInternal(this)->self_size();
7224   CHECK(size <= static_cast<size_t>(internal::kMaxInt));
7225   return static_cast<int>(size);
7226 }
7227 
7228 
GetShallowSize() const7229 size_t HeapGraphNode::GetShallowSize() const {
7230   return ToInternal(this)->self_size();
7231 }
7232 
7233 
GetChildrenCount() const7234 int HeapGraphNode::GetChildrenCount() const {
7235   return ToInternal(this)->children().length();
7236 }
7237 
7238 
GetChild(int index) const7239 const HeapGraphEdge* HeapGraphNode::GetChild(int index) const {
7240   return reinterpret_cast<const HeapGraphEdge*>(
7241       ToInternal(this)->children()[index]);
7242 }
7243 
7244 
ToInternal(const HeapSnapshot * snapshot)7245 static i::HeapSnapshot* ToInternal(const HeapSnapshot* snapshot) {
7246   return const_cast<i::HeapSnapshot*>(
7247       reinterpret_cast<const i::HeapSnapshot*>(snapshot));
7248 }
7249 
7250 
Delete()7251 void HeapSnapshot::Delete() {
7252   i::Isolate* isolate = i::Isolate::Current();
7253   if (isolate->heap_profiler()->GetSnapshotsCount() > 1) {
7254     ToInternal(this)->Delete();
7255   } else {
7256     // If this is the last snapshot, clean up all accessory data as well.
7257     isolate->heap_profiler()->DeleteAllSnapshots();
7258   }
7259 }
7260 
7261 
GetUid() const7262 unsigned HeapSnapshot::GetUid() const {
7263   return ToInternal(this)->uid();
7264 }
7265 
7266 
GetTitle() const7267 Handle<String> HeapSnapshot::GetTitle() const {
7268   i::Isolate* isolate = i::Isolate::Current();
7269   return ToApiHandle<String>(
7270       isolate->factory()->InternalizeUtf8String(ToInternal(this)->title()));
7271 }
7272 
7273 
GetRoot() const7274 const HeapGraphNode* HeapSnapshot::GetRoot() const {
7275   return reinterpret_cast<const HeapGraphNode*>(ToInternal(this)->root());
7276 }
7277 
7278 
GetNodeById(SnapshotObjectId id) const7279 const HeapGraphNode* HeapSnapshot::GetNodeById(SnapshotObjectId id) const {
7280   return reinterpret_cast<const HeapGraphNode*>(
7281       ToInternal(this)->GetEntryById(id));
7282 }
7283 
7284 
GetNodesCount() const7285 int HeapSnapshot::GetNodesCount() const {
7286   return ToInternal(this)->entries().length();
7287 }
7288 
7289 
GetNode(int index) const7290 const HeapGraphNode* HeapSnapshot::GetNode(int index) const {
7291   return reinterpret_cast<const HeapGraphNode*>(
7292       &ToInternal(this)->entries().at(index));
7293 }
7294 
7295 
GetMaxSnapshotJSObjectId() const7296 SnapshotObjectId HeapSnapshot::GetMaxSnapshotJSObjectId() const {
7297   return ToInternal(this)->max_snapshot_js_object_id();
7298 }
7299 
7300 
Serialize(OutputStream * stream,HeapSnapshot::SerializationFormat format) const7301 void HeapSnapshot::Serialize(OutputStream* stream,
7302                              HeapSnapshot::SerializationFormat format) const {
7303   Utils::ApiCheck(format == kJSON,
7304                   "v8::HeapSnapshot::Serialize",
7305                   "Unknown serialization format");
7306   Utils::ApiCheck(stream->GetChunkSize() > 0,
7307                   "v8::HeapSnapshot::Serialize",
7308                   "Invalid stream chunk size");
7309   i::HeapSnapshotJSONSerializer serializer(ToInternal(this));
7310   serializer.Serialize(stream);
7311 }
7312 
7313 
GetSnapshotCount()7314 int HeapProfiler::GetSnapshotCount() {
7315   return reinterpret_cast<i::HeapProfiler*>(this)->GetSnapshotsCount();
7316 }
7317 
7318 
GetHeapSnapshot(int index)7319 const HeapSnapshot* HeapProfiler::GetHeapSnapshot(int index) {
7320   return reinterpret_cast<const HeapSnapshot*>(
7321       reinterpret_cast<i::HeapProfiler*>(this)->GetSnapshot(index));
7322 }
7323 
7324 
GetObjectId(Handle<Value> value)7325 SnapshotObjectId HeapProfiler::GetObjectId(Handle<Value> value) {
7326   i::Handle<i::Object> obj = Utils::OpenHandle(*value);
7327   return reinterpret_cast<i::HeapProfiler*>(this)->GetSnapshotObjectId(obj);
7328 }
7329 
7330 
FindObjectById(SnapshotObjectId id)7331 Handle<Value> HeapProfiler::FindObjectById(SnapshotObjectId id) {
7332   i::Handle<i::Object> obj =
7333       reinterpret_cast<i::HeapProfiler*>(this)->FindHeapObjectById(id);
7334   if (obj.is_null()) return Local<Value>();
7335   return Utils::ToLocal(obj);
7336 }
7337 
7338 
ClearObjectIds()7339 void HeapProfiler::ClearObjectIds() {
7340   reinterpret_cast<i::HeapProfiler*>(this)->ClearHeapObjectMap();
7341 }
7342 
7343 
TakeHeapSnapshot(Handle<String> title,ActivityControl * control,ObjectNameResolver * resolver)7344 const HeapSnapshot* HeapProfiler::TakeHeapSnapshot(
7345     Handle<String> title,
7346     ActivityControl* control,
7347     ObjectNameResolver* resolver) {
7348   return reinterpret_cast<const HeapSnapshot*>(
7349       reinterpret_cast<i::HeapProfiler*>(this)->TakeSnapshot(
7350           *Utils::OpenHandle(*title), control, resolver));
7351 }
7352 
7353 
StartTrackingHeapObjects(bool track_allocations)7354 void HeapProfiler::StartTrackingHeapObjects(bool track_allocations) {
7355   reinterpret_cast<i::HeapProfiler*>(this)->StartHeapObjectsTracking(
7356       track_allocations);
7357 }
7358 
7359 
StopTrackingHeapObjects()7360 void HeapProfiler::StopTrackingHeapObjects() {
7361   reinterpret_cast<i::HeapProfiler*>(this)->StopHeapObjectsTracking();
7362 }
7363 
7364 
GetHeapStats(OutputStream * stream)7365 SnapshotObjectId HeapProfiler::GetHeapStats(OutputStream* stream) {
7366   return reinterpret_cast<i::HeapProfiler*>(this)->PushHeapObjectsStats(stream);
7367 }
7368 
7369 
DeleteAllHeapSnapshots()7370 void HeapProfiler::DeleteAllHeapSnapshots() {
7371   reinterpret_cast<i::HeapProfiler*>(this)->DeleteAllSnapshots();
7372 }
7373 
7374 
SetWrapperClassInfoProvider(uint16_t class_id,WrapperInfoCallback callback)7375 void HeapProfiler::SetWrapperClassInfoProvider(uint16_t class_id,
7376                                                WrapperInfoCallback callback) {
7377   reinterpret_cast<i::HeapProfiler*>(this)->DefineWrapperClass(class_id,
7378                                                                callback);
7379 }
7380 
7381 
GetProfilerMemorySize()7382 size_t HeapProfiler::GetProfilerMemorySize() {
7383   return reinterpret_cast<i::HeapProfiler*>(this)->
7384       GetMemorySizeUsedByProfiler();
7385 }
7386 
7387 
SetRetainedObjectInfo(UniqueId id,RetainedObjectInfo * info)7388 void HeapProfiler::SetRetainedObjectInfo(UniqueId id,
7389                                          RetainedObjectInfo* info) {
7390   reinterpret_cast<i::HeapProfiler*>(this)->SetRetainedObjectInfo(id, info);
7391 }
7392 
7393 
7394 v8::Testing::StressType internal::Testing::stress_type_ =
7395     v8::Testing::kStressTypeOpt;
7396 
7397 
SetStressRunType(Testing::StressType type)7398 void Testing::SetStressRunType(Testing::StressType type) {
7399   internal::Testing::set_stress_type(type);
7400 }
7401 
7402 
GetStressRuns()7403 int Testing::GetStressRuns() {
7404   if (internal::FLAG_stress_runs != 0) return internal::FLAG_stress_runs;
7405 #ifdef DEBUG
7406   // In debug mode the code runs much slower so stressing will only make two
7407   // runs.
7408   return 2;
7409 #else
7410   return 5;
7411 #endif
7412 }
7413 
7414 
SetFlagsFromString(const char * flags)7415 static void SetFlagsFromString(const char* flags) {
7416   V8::SetFlagsFromString(flags, i::StrLength(flags));
7417 }
7418 
7419 
PrepareStressRun(int run)7420 void Testing::PrepareStressRun(int run) {
7421   static const char* kLazyOptimizations =
7422       "--prepare-always-opt "
7423       "--max-inlined-source-size=999999 "
7424       "--max-inlined-nodes=999999 "
7425       "--max-inlined-nodes-cumulative=999999 "
7426       "--noalways-opt";
7427   static const char* kForcedOptimizations = "--always-opt";
7428 
7429   // If deoptimization stressed turn on frequent deoptimization. If no value
7430   // is spefified through --deopt-every-n-times use a default default value.
7431   static const char* kDeoptEvery13Times = "--deopt-every-n-times=13";
7432   if (internal::Testing::stress_type() == Testing::kStressTypeDeopt &&
7433       internal::FLAG_deopt_every_n_times == 0) {
7434     SetFlagsFromString(kDeoptEvery13Times);
7435   }
7436 
7437 #ifdef DEBUG
7438   // As stressing in debug mode only make two runs skip the deopt stressing
7439   // here.
7440   if (run == GetStressRuns() - 1) {
7441     SetFlagsFromString(kForcedOptimizations);
7442   } else {
7443     SetFlagsFromString(kLazyOptimizations);
7444   }
7445 #else
7446   if (run == GetStressRuns() - 1) {
7447     SetFlagsFromString(kForcedOptimizations);
7448   } else if (run != GetStressRuns() - 2) {
7449     SetFlagsFromString(kLazyOptimizations);
7450   }
7451 #endif
7452 }
7453 
7454 
7455 // TODO(svenpanne) Deprecate this.
DeoptimizeAll()7456 void Testing::DeoptimizeAll() {
7457   i::Isolate* isolate = i::Isolate::Current();
7458   i::HandleScope scope(isolate);
7459   internal::Deoptimizer::DeoptimizeAll(isolate);
7460 }
7461 
7462 
7463 namespace internal {
7464 
7465 
FreeThreadResources()7466 void HandleScopeImplementer::FreeThreadResources() {
7467   Free();
7468 }
7469 
7470 
ArchiveThread(char * storage)7471 char* HandleScopeImplementer::ArchiveThread(char* storage) {
7472   HandleScopeData* current = isolate_->handle_scope_data();
7473   handle_scope_data_ = *current;
7474   MemCopy(storage, this, sizeof(*this));
7475 
7476   ResetAfterArchive();
7477   current->Initialize();
7478 
7479   return storage + ArchiveSpacePerThread();
7480 }
7481 
7482 
ArchiveSpacePerThread()7483 int HandleScopeImplementer::ArchiveSpacePerThread() {
7484   return sizeof(HandleScopeImplementer);
7485 }
7486 
7487 
RestoreThread(char * storage)7488 char* HandleScopeImplementer::RestoreThread(char* storage) {
7489   MemCopy(this, storage, sizeof(*this));
7490   *isolate_->handle_scope_data() = handle_scope_data_;
7491   return storage + ArchiveSpacePerThread();
7492 }
7493 
7494 
IterateThis(ObjectVisitor * v)7495 void HandleScopeImplementer::IterateThis(ObjectVisitor* v) {
7496 #ifdef DEBUG
7497   bool found_block_before_deferred = false;
7498 #endif
7499   // Iterate over all handles in the blocks except for the last.
7500   for (int i = blocks()->length() - 2; i >= 0; --i) {
7501     Object** block = blocks()->at(i);
7502     if (last_handle_before_deferred_block_ != NULL &&
7503         (last_handle_before_deferred_block_ <= &block[kHandleBlockSize]) &&
7504         (last_handle_before_deferred_block_ >= block)) {
7505       v->VisitPointers(block, last_handle_before_deferred_block_);
7506       ASSERT(!found_block_before_deferred);
7507 #ifdef DEBUG
7508       found_block_before_deferred = true;
7509 #endif
7510     } else {
7511       v->VisitPointers(block, &block[kHandleBlockSize]);
7512     }
7513   }
7514 
7515   ASSERT(last_handle_before_deferred_block_ == NULL ||
7516          found_block_before_deferred);
7517 
7518   // Iterate over live handles in the last block (if any).
7519   if (!blocks()->is_empty()) {
7520     v->VisitPointers(blocks()->last(), handle_scope_data_.next);
7521   }
7522 
7523   List<Context*>* context_lists[2] = { &saved_contexts_, &entered_contexts_};
7524   for (unsigned i = 0; i < ARRAY_SIZE(context_lists); i++) {
7525     if (context_lists[i]->is_empty()) continue;
7526     Object** start = reinterpret_cast<Object**>(&context_lists[i]->first());
7527     v->VisitPointers(start, start + context_lists[i]->length());
7528   }
7529 }
7530 
7531 
Iterate(ObjectVisitor * v)7532 void HandleScopeImplementer::Iterate(ObjectVisitor* v) {
7533   HandleScopeData* current = isolate_->handle_scope_data();
7534   handle_scope_data_ = *current;
7535   IterateThis(v);
7536 }
7537 
7538 
Iterate(ObjectVisitor * v,char * storage)7539 char* HandleScopeImplementer::Iterate(ObjectVisitor* v, char* storage) {
7540   HandleScopeImplementer* scope_implementer =
7541       reinterpret_cast<HandleScopeImplementer*>(storage);
7542   scope_implementer->IterateThis(v);
7543   return storage + ArchiveSpacePerThread();
7544 }
7545 
7546 
Detach(Object ** prev_limit)7547 DeferredHandles* HandleScopeImplementer::Detach(Object** prev_limit) {
7548   DeferredHandles* deferred =
7549       new DeferredHandles(isolate()->handle_scope_data()->next, isolate());
7550 
7551   while (!blocks_.is_empty()) {
7552     Object** block_start = blocks_.last();
7553     Object** block_limit = &block_start[kHandleBlockSize];
7554     // We should not need to check for SealHandleScope here. Assert this.
7555     ASSERT(prev_limit == block_limit ||
7556            !(block_start <= prev_limit && prev_limit <= block_limit));
7557     if (prev_limit == block_limit) break;
7558     deferred->blocks_.Add(blocks_.last());
7559     blocks_.RemoveLast();
7560   }
7561 
7562   // deferred->blocks_ now contains the blocks installed on the
7563   // HandleScope stack since BeginDeferredScope was called, but in
7564   // reverse order.
7565 
7566   ASSERT(prev_limit == NULL || !blocks_.is_empty());
7567 
7568   ASSERT(!blocks_.is_empty() && prev_limit != NULL);
7569   ASSERT(last_handle_before_deferred_block_ != NULL);
7570   last_handle_before_deferred_block_ = NULL;
7571   return deferred;
7572 }
7573 
7574 
BeginDeferredScope()7575 void HandleScopeImplementer::BeginDeferredScope() {
7576   ASSERT(last_handle_before_deferred_block_ == NULL);
7577   last_handle_before_deferred_block_ = isolate()->handle_scope_data()->next;
7578 }
7579 
7580 
~DeferredHandles()7581 DeferredHandles::~DeferredHandles() {
7582   isolate_->UnlinkDeferredHandles(this);
7583 
7584   for (int i = 0; i < blocks_.length(); i++) {
7585 #ifdef ENABLE_HANDLE_ZAPPING
7586     HandleScope::ZapRange(blocks_[i], &blocks_[i][kHandleBlockSize]);
7587 #endif
7588     isolate_->handle_scope_implementer()->ReturnBlock(blocks_[i]);
7589   }
7590 }
7591 
7592 
Iterate(ObjectVisitor * v)7593 void DeferredHandles::Iterate(ObjectVisitor* v) {
7594   ASSERT(!blocks_.is_empty());
7595 
7596   ASSERT((first_block_limit_ >= blocks_.first()) &&
7597          (first_block_limit_ <= &(blocks_.first())[kHandleBlockSize]));
7598 
7599   v->VisitPointers(blocks_.first(), first_block_limit_);
7600 
7601   for (int i = 1; i < blocks_.length(); i++) {
7602     v->VisitPointers(blocks_[i], &blocks_[i][kHandleBlockSize]);
7603   }
7604 }
7605 
7606 
InvokeAccessorGetterCallback(v8::Local<v8::String> property,const v8::PropertyCallbackInfo<v8::Value> & info,v8::AccessorGetterCallback getter)7607 void InvokeAccessorGetterCallback(
7608     v8::Local<v8::String> property,
7609     const v8::PropertyCallbackInfo<v8::Value>& info,
7610     v8::AccessorGetterCallback getter) {
7611   // Leaving JavaScript.
7612   Isolate* isolate = reinterpret_cast<Isolate*>(info.GetIsolate());
7613   Address getter_address = reinterpret_cast<Address>(reinterpret_cast<intptr_t>(
7614       getter));
7615   VMState<EXTERNAL> state(isolate);
7616   ExternalCallbackScope call_scope(isolate, getter_address);
7617   getter(property, info);
7618 }
7619 
7620 
InvokeFunctionCallback(const v8::FunctionCallbackInfo<v8::Value> & info,v8::FunctionCallback callback)7621 void InvokeFunctionCallback(const v8::FunctionCallbackInfo<v8::Value>& info,
7622                             v8::FunctionCallback callback) {
7623   Isolate* isolate = reinterpret_cast<Isolate*>(info.GetIsolate());
7624   Address callback_address =
7625       reinterpret_cast<Address>(reinterpret_cast<intptr_t>(callback));
7626   VMState<EXTERNAL> state(isolate);
7627   ExternalCallbackScope call_scope(isolate, callback_address);
7628   callback(info);
7629 }
7630 
7631 
7632 } }  // namespace v8::internal
7633