1 /*
2 * Copyright (C) 2011 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #include "image_writer.h"
18
19 #include <sys/stat.h>
20
21 #include <vector>
22
23 #include "base/logging.h"
24 #include "base/unix_file/fd_file.h"
25 #include "class_linker.h"
26 #include "compiled_method.h"
27 #include "dex_file-inl.h"
28 #include "driver/compiler_driver.h"
29 #include "elf_writer.h"
30 #include "gc/accounting/card_table-inl.h"
31 #include "gc/accounting/heap_bitmap.h"
32 #include "gc/accounting/space_bitmap-inl.h"
33 #include "gc/heap.h"
34 #include "gc/space/large_object_space.h"
35 #include "gc/space/space-inl.h"
36 #include "globals.h"
37 #include "image.h"
38 #include "intern_table.h"
39 #include "mirror/art_field-inl.h"
40 #include "mirror/art_method-inl.h"
41 #include "mirror/array-inl.h"
42 #include "mirror/class-inl.h"
43 #include "mirror/class_loader.h"
44 #include "mirror/dex_cache-inl.h"
45 #include "mirror/object-inl.h"
46 #include "mirror/object_array-inl.h"
47 #include "oat.h"
48 #include "oat_file.h"
49 #include "object_utils.h"
50 #include "runtime.h"
51 #include "scoped_thread_state_change.h"
52 #include "sirt_ref.h"
53 #include "UniquePtr.h"
54 #include "utils.h"
55
56 using ::art::mirror::ArtField;
57 using ::art::mirror::ArtMethod;
58 using ::art::mirror::Class;
59 using ::art::mirror::DexCache;
60 using ::art::mirror::EntryPointFromInterpreter;
61 using ::art::mirror::Object;
62 using ::art::mirror::ObjectArray;
63 using ::art::mirror::String;
64
65 namespace art {
66
Write(const std::string & image_filename,uintptr_t image_begin,const std::string & oat_filename,const std::string & oat_location)67 bool ImageWriter::Write(const std::string& image_filename,
68 uintptr_t image_begin,
69 const std::string& oat_filename,
70 const std::string& oat_location) {
71 CHECK(!image_filename.empty());
72
73 CHECK_NE(image_begin, 0U);
74 image_begin_ = reinterpret_cast<byte*>(image_begin);
75
76 ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
77 const std::vector<DexCache*>& all_dex_caches = class_linker->GetDexCaches();
78 dex_caches_.insert(all_dex_caches.begin(), all_dex_caches.end());
79
80 UniquePtr<File> oat_file(OS::OpenFileReadWrite(oat_filename.c_str()));
81 if (oat_file.get() == NULL) {
82 LOG(ERROR) << "Failed to open oat file " << oat_filename << " for " << oat_location;
83 return false;
84 }
85 oat_file_ = OatFile::OpenWritable(oat_file.get(), oat_location);
86 if (oat_file_ == NULL) {
87 LOG(ERROR) << "Failed to open writable oat file " << oat_filename << " for " << oat_location;
88 return false;
89 }
90 class_linker->RegisterOatFile(*oat_file_);
91
92 interpreter_to_interpreter_bridge_offset_ =
93 oat_file_->GetOatHeader().GetInterpreterToInterpreterBridgeOffset();
94 interpreter_to_compiled_code_bridge_offset_ =
95 oat_file_->GetOatHeader().GetInterpreterToCompiledCodeBridgeOffset();
96
97 jni_dlsym_lookup_offset_ = oat_file_->GetOatHeader().GetJniDlsymLookupOffset();
98
99 portable_resolution_trampoline_offset_ =
100 oat_file_->GetOatHeader().GetPortableResolutionTrampolineOffset();
101 portable_to_interpreter_bridge_offset_ =
102 oat_file_->GetOatHeader().GetPortableToInterpreterBridgeOffset();
103
104 quick_resolution_trampoline_offset_ =
105 oat_file_->GetOatHeader().GetQuickResolutionTrampolineOffset();
106 quick_to_interpreter_bridge_offset_ =
107 oat_file_->GetOatHeader().GetQuickToInterpreterBridgeOffset();
108 {
109 Thread::Current()->TransitionFromSuspendedToRunnable();
110 PruneNonImageClasses(); // Remove junk
111 ComputeLazyFieldsForImageClasses(); // Add useful information
112 ComputeEagerResolvedStrings();
113 Thread::Current()->TransitionFromRunnableToSuspended(kNative);
114 }
115 gc::Heap* heap = Runtime::Current()->GetHeap();
116 heap->CollectGarbage(false); // Remove garbage.
117 // Trim size of alloc spaces.
118 for (const auto& space : heap->GetContinuousSpaces()) {
119 if (space->IsDlMallocSpace()) {
120 space->AsDlMallocSpace()->Trim();
121 }
122 }
123
124 if (!AllocMemory()) {
125 return false;
126 }
127 #ifndef NDEBUG
128 { // NOLINT(whitespace/braces)
129 ScopedObjectAccess soa(Thread::Current());
130 CheckNonImageClassesRemoved();
131 }
132 #endif
133 Thread::Current()->TransitionFromSuspendedToRunnable();
134 size_t oat_loaded_size = 0;
135 size_t oat_data_offset = 0;
136 ElfWriter::GetOatElfInformation(oat_file.get(), oat_loaded_size, oat_data_offset);
137 CalculateNewObjectOffsets(oat_loaded_size, oat_data_offset);
138 CopyAndFixupObjects();
139 PatchOatCodeAndMethods();
140 // Record allocations into the image bitmap.
141 RecordImageAllocations();
142 Thread::Current()->TransitionFromRunnableToSuspended(kNative);
143
144 UniquePtr<File> image_file(OS::CreateEmptyFile(image_filename.c_str()));
145 ImageHeader* image_header = reinterpret_cast<ImageHeader*>(image_->Begin());
146 if (image_file.get() == NULL) {
147 LOG(ERROR) << "Failed to open image file " << image_filename;
148 return false;
149 }
150 if (fchmod(image_file->Fd(), 0644) != 0) {
151 PLOG(ERROR) << "Failed to make image file world readable: " << image_filename;
152 return EXIT_FAILURE;
153 }
154
155 // Write out the image.
156 CHECK_EQ(image_end_, image_header->GetImageSize());
157 if (!image_file->WriteFully(image_->Begin(), image_end_)) {
158 PLOG(ERROR) << "Failed to write image file " << image_filename;
159 return false;
160 }
161
162 // Write out the image bitmap at the page aligned start of the image end.
163 CHECK_ALIGNED(image_header->GetImageBitmapOffset(), kPageSize);
164 if (!image_file->Write(reinterpret_cast<char*>(image_bitmap_->Begin()),
165 image_header->GetImageBitmapSize(),
166 image_header->GetImageBitmapOffset())) {
167 PLOG(ERROR) << "Failed to write image file " << image_filename;
168 return false;
169 }
170
171 return true;
172 }
173
RecordImageAllocations()174 void ImageWriter::RecordImageAllocations() {
175 uint64_t start_time = NanoTime();
176 CHECK(image_bitmap_.get() != nullptr);
177 for (const auto& it : offsets_) {
178 mirror::Object* obj = reinterpret_cast<mirror::Object*>(image_->Begin() + it.second);
179 DCHECK_ALIGNED(obj, kObjectAlignment);
180 image_bitmap_->Set(obj);
181 }
182 LOG(INFO) << "RecordImageAllocations took " << PrettyDuration(NanoTime() - start_time);
183 }
184
AllocMemory()185 bool ImageWriter::AllocMemory() {
186 size_t size = 0;
187 for (const auto& space : Runtime::Current()->GetHeap()->GetContinuousSpaces()) {
188 if (space->IsDlMallocSpace()) {
189 size += space->Size();
190 }
191 }
192
193 int prot = PROT_READ | PROT_WRITE;
194 size_t length = RoundUp(size, kPageSize);
195 image_.reset(MemMap::MapAnonymous("image writer image", NULL, length, prot));
196 if (image_.get() == NULL) {
197 LOG(ERROR) << "Failed to allocate memory for image file generation";
198 return false;
199 }
200 return true;
201 }
202
ComputeLazyFieldsForImageClasses()203 void ImageWriter::ComputeLazyFieldsForImageClasses() {
204 Runtime* runtime = Runtime::Current();
205 ClassLinker* class_linker = runtime->GetClassLinker();
206 class_linker->VisitClassesWithoutClassesLock(ComputeLazyFieldsForClassesVisitor, NULL);
207 }
208
ComputeLazyFieldsForClassesVisitor(Class * c,void *)209 bool ImageWriter::ComputeLazyFieldsForClassesVisitor(Class* c, void* /*arg*/) {
210 c->ComputeName();
211 return true;
212 }
213
ComputeEagerResolvedStringsCallback(Object * obj,void * arg)214 void ImageWriter::ComputeEagerResolvedStringsCallback(Object* obj, void* arg) {
215 if (!obj->GetClass()->IsStringClass()) {
216 return;
217 }
218 String* string = obj->AsString();
219 const uint16_t* utf16_string = string->GetCharArray()->GetData() + string->GetOffset();
220 ImageWriter* writer = reinterpret_cast<ImageWriter*>(arg);
221 for (DexCache* dex_cache : writer->dex_caches_) {
222 const DexFile& dex_file = *dex_cache->GetDexFile();
223 const DexFile::StringId* string_id = dex_file.FindStringId(utf16_string);
224 if (string_id != NULL) {
225 // This string occurs in this dex file, assign the dex cache entry.
226 uint32_t string_idx = dex_file.GetIndexForStringId(*string_id);
227 if (dex_cache->GetResolvedString(string_idx) == NULL) {
228 dex_cache->SetResolvedString(string_idx, string);
229 }
230 }
231 }
232 }
233
ComputeEagerResolvedStrings()234 void ImageWriter::ComputeEagerResolvedStrings()
235 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
236 // TODO: Check image spaces only?
237 gc::Heap* heap = Runtime::Current()->GetHeap();
238 WriterMutexLock mu(Thread::Current(), *Locks::heap_bitmap_lock_);
239 heap->FlushAllocStack();
240 heap->GetLiveBitmap()->Walk(ComputeEagerResolvedStringsCallback, this);
241 }
242
IsImageClass(const Class * klass)243 bool ImageWriter::IsImageClass(const Class* klass) {
244 return compiler_driver_.IsImageClass(ClassHelper(klass).GetDescriptor());
245 }
246
247 struct NonImageClasses {
248 ImageWriter* image_writer;
249 std::set<std::string>* non_image_classes;
250 };
251
PruneNonImageClasses()252 void ImageWriter::PruneNonImageClasses() {
253 if (compiler_driver_.GetImageClasses() == NULL) {
254 return;
255 }
256 Runtime* runtime = Runtime::Current();
257 ClassLinker* class_linker = runtime->GetClassLinker();
258
259 // Make a list of classes we would like to prune.
260 std::set<std::string> non_image_classes;
261 NonImageClasses context;
262 context.image_writer = this;
263 context.non_image_classes = &non_image_classes;
264 class_linker->VisitClasses(NonImageClassesVisitor, &context);
265
266 // Remove the undesired classes from the class roots.
267 for (const std::string& it : non_image_classes) {
268 class_linker->RemoveClass(it.c_str(), NULL);
269 }
270
271 // Clear references to removed classes from the DexCaches.
272 ArtMethod* resolution_method = runtime->GetResolutionMethod();
273 for (DexCache* dex_cache : dex_caches_) {
274 for (size_t i = 0; i < dex_cache->NumResolvedTypes(); i++) {
275 Class* klass = dex_cache->GetResolvedType(i);
276 if (klass != NULL && !IsImageClass(klass)) {
277 dex_cache->SetResolvedType(i, NULL);
278 dex_cache->GetInitializedStaticStorage()->Set(i, NULL);
279 }
280 }
281 for (size_t i = 0; i < dex_cache->NumResolvedMethods(); i++) {
282 ArtMethod* method = dex_cache->GetResolvedMethod(i);
283 if (method != NULL && !IsImageClass(method->GetDeclaringClass())) {
284 dex_cache->SetResolvedMethod(i, resolution_method);
285 }
286 }
287 for (size_t i = 0; i < dex_cache->NumResolvedFields(); i++) {
288 ArtField* field = dex_cache->GetResolvedField(i);
289 if (field != NULL && !IsImageClass(field->GetDeclaringClass())) {
290 dex_cache->SetResolvedField(i, NULL);
291 }
292 }
293 }
294 }
295
NonImageClassesVisitor(Class * klass,void * arg)296 bool ImageWriter::NonImageClassesVisitor(Class* klass, void* arg) {
297 NonImageClasses* context = reinterpret_cast<NonImageClasses*>(arg);
298 if (!context->image_writer->IsImageClass(klass)) {
299 context->non_image_classes->insert(ClassHelper(klass).GetDescriptor());
300 }
301 return true;
302 }
303
CheckNonImageClassesRemoved()304 void ImageWriter::CheckNonImageClassesRemoved()
305 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
306 if (compiler_driver_.GetImageClasses() == NULL) {
307 return;
308 }
309
310 gc::Heap* heap = Runtime::Current()->GetHeap();
311 Thread* self = Thread::Current();
312 {
313 WriterMutexLock mu(self, *Locks::heap_bitmap_lock_);
314 heap->FlushAllocStack();
315 }
316
317 ReaderMutexLock mu(self, *Locks::heap_bitmap_lock_);
318 heap->GetLiveBitmap()->Walk(CheckNonImageClassesRemovedCallback, this);
319 }
320
CheckNonImageClassesRemovedCallback(Object * obj,void * arg)321 void ImageWriter::CheckNonImageClassesRemovedCallback(Object* obj, void* arg) {
322 ImageWriter* image_writer = reinterpret_cast<ImageWriter*>(arg);
323 if (!obj->IsClass()) {
324 return;
325 }
326 Class* klass = obj->AsClass();
327 if (!image_writer->IsImageClass(klass)) {
328 image_writer->DumpImageClasses();
329 CHECK(image_writer->IsImageClass(klass)) << ClassHelper(klass).GetDescriptor()
330 << " " << PrettyDescriptor(klass);
331 }
332 }
333
DumpImageClasses()334 void ImageWriter::DumpImageClasses() {
335 CompilerDriver::DescriptorSet* image_classes = compiler_driver_.GetImageClasses();
336 CHECK(image_classes != NULL);
337 for (const std::string& image_class : *image_classes) {
338 LOG(INFO) << " " << image_class;
339 }
340 }
341
CalculateNewObjectOffsetsCallback(Object * obj,void * arg)342 void ImageWriter::CalculateNewObjectOffsetsCallback(Object* obj, void* arg) {
343 DCHECK(obj != NULL);
344 DCHECK(arg != NULL);
345 ImageWriter* image_writer = reinterpret_cast<ImageWriter*>(arg);
346
347 // if it is a string, we want to intern it if its not interned.
348 if (obj->GetClass()->IsStringClass()) {
349 // we must be an interned string that was forward referenced and already assigned
350 if (image_writer->IsImageOffsetAssigned(obj)) {
351 DCHECK_EQ(obj, obj->AsString()->Intern());
352 return;
353 }
354 SirtRef<String> interned(Thread::Current(), obj->AsString()->Intern());
355 if (obj != interned.get()) {
356 if (!image_writer->IsImageOffsetAssigned(interned.get())) {
357 // interned obj is after us, allocate its location early
358 image_writer->AssignImageOffset(interned.get());
359 }
360 // point those looking for this object to the interned version.
361 image_writer->SetImageOffset(obj, image_writer->GetImageOffset(interned.get()));
362 return;
363 }
364 // else (obj == interned), nothing to do but fall through to the normal case
365 }
366
367 image_writer->AssignImageOffset(obj);
368 }
369
CreateImageRoots() const370 ObjectArray<Object>* ImageWriter::CreateImageRoots() const {
371 Runtime* runtime = Runtime::Current();
372 ClassLinker* class_linker = runtime->GetClassLinker();
373 Class* object_array_class = class_linker->FindSystemClass("[Ljava/lang/Object;");
374 Thread* self = Thread::Current();
375
376 // build an Object[] of all the DexCaches used in the source_space_
377 ObjectArray<Object>* dex_caches = ObjectArray<Object>::Alloc(self, object_array_class,
378 dex_caches_.size());
379 int i = 0;
380 for (DexCache* dex_cache : dex_caches_) {
381 dex_caches->Set(i++, dex_cache);
382 }
383
384 // build an Object[] of the roots needed to restore the runtime
385 SirtRef<ObjectArray<Object> >
386 image_roots(self,
387 ObjectArray<Object>::Alloc(self, object_array_class,
388 ImageHeader::kImageRootsMax));
389 image_roots->Set(ImageHeader::kResolutionMethod, runtime->GetResolutionMethod());
390 image_roots->Set(ImageHeader::kCalleeSaveMethod,
391 runtime->GetCalleeSaveMethod(Runtime::kSaveAll));
392 image_roots->Set(ImageHeader::kRefsOnlySaveMethod,
393 runtime->GetCalleeSaveMethod(Runtime::kRefsOnly));
394 image_roots->Set(ImageHeader::kRefsAndArgsSaveMethod,
395 runtime->GetCalleeSaveMethod(Runtime::kRefsAndArgs));
396 image_roots->Set(ImageHeader::kOatLocation,
397 String::AllocFromModifiedUtf8(self, oat_file_->GetLocation().c_str()));
398 image_roots->Set(ImageHeader::kDexCaches,
399 dex_caches);
400 image_roots->Set(ImageHeader::kClassRoots,
401 class_linker->GetClassRoots());
402 for (int i = 0; i < ImageHeader::kImageRootsMax; i++) {
403 CHECK(image_roots->Get(i) != NULL);
404 }
405 return image_roots.get();
406 }
407
CalculateNewObjectOffsets(size_t oat_loaded_size,size_t oat_data_offset)408 void ImageWriter::CalculateNewObjectOffsets(size_t oat_loaded_size, size_t oat_data_offset) {
409 CHECK_NE(0U, oat_loaded_size);
410 Thread* self = Thread::Current();
411 SirtRef<ObjectArray<Object> > image_roots(self, CreateImageRoots());
412
413 gc::Heap* heap = Runtime::Current()->GetHeap();
414 const auto& spaces = heap->GetContinuousSpaces();
415 DCHECK(!spaces.empty());
416 DCHECK_EQ(0U, image_end_);
417
418 // Leave space for the header, but do not write it yet, we need to
419 // know where image_roots is going to end up
420 image_end_ += RoundUp(sizeof(ImageHeader), 8); // 64-bit-alignment
421
422 {
423 WriterMutexLock mu(self, *Locks::heap_bitmap_lock_);
424 heap->FlushAllocStack();
425 // TODO: Image spaces only?
426 // TODO: Add InOrderWalk to heap bitmap.
427 const char* old = self->StartAssertNoThreadSuspension("ImageWriter");
428 DCHECK(heap->GetLargeObjectsSpace()->GetLiveObjects()->IsEmpty());
429 for (const auto& space : spaces) {
430 space->GetLiveBitmap()->InOrderWalk(CalculateNewObjectOffsetsCallback, this);
431 DCHECK_LT(image_end_, image_->Size());
432 }
433 self->EndAssertNoThreadSuspension(old);
434 }
435
436 // Create the image bitmap.
437 image_bitmap_.reset(gc::accounting::SpaceBitmap::Create("image bitmap", image_->Begin(),
438 image_end_));
439 const byte* oat_file_begin = image_begin_ + RoundUp(image_end_, kPageSize);
440 const byte* oat_file_end = oat_file_begin + oat_loaded_size;
441 oat_data_begin_ = oat_file_begin + oat_data_offset;
442 const byte* oat_data_end = oat_data_begin_ + oat_file_->Size();
443
444 // Return to write header at start of image with future location of image_roots. At this point,
445 // image_end_ is the size of the image (excluding bitmaps).
446 ImageHeader image_header(reinterpret_cast<uint32_t>(image_begin_),
447 static_cast<uint32_t>(image_end_),
448 RoundUp(image_end_, kPageSize),
449 image_bitmap_->Size(),
450 reinterpret_cast<uint32_t>(GetImageAddress(image_roots.get())),
451 oat_file_->GetOatHeader().GetChecksum(),
452 reinterpret_cast<uint32_t>(oat_file_begin),
453 reinterpret_cast<uint32_t>(oat_data_begin_),
454 reinterpret_cast<uint32_t>(oat_data_end),
455 reinterpret_cast<uint32_t>(oat_file_end));
456 memcpy(image_->Begin(), &image_header, sizeof(image_header));
457
458 // Note that image_end_ is left at end of used space
459 }
460
CopyAndFixupObjects()461 void ImageWriter::CopyAndFixupObjects()
462 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
463 Thread* self = Thread::Current();
464 const char* old_cause = self->StartAssertNoThreadSuspension("ImageWriter");
465 gc::Heap* heap = Runtime::Current()->GetHeap();
466 // TODO: heap validation can't handle this fix up pass
467 heap->DisableObjectValidation();
468 // TODO: Image spaces only?
469 WriterMutexLock mu(self, *Locks::heap_bitmap_lock_);
470 heap->FlushAllocStack();
471 heap->GetLiveBitmap()->Walk(CopyAndFixupObjectsCallback, this);
472 self->EndAssertNoThreadSuspension(old_cause);
473 }
474
CopyAndFixupObjectsCallback(Object * object,void * arg)475 void ImageWriter::CopyAndFixupObjectsCallback(Object* object, void* arg) {
476 DCHECK(object != NULL);
477 DCHECK(arg != NULL);
478 const Object* obj = object;
479 ImageWriter* image_writer = reinterpret_cast<ImageWriter*>(arg);
480
481 // see GetLocalAddress for similar computation
482 size_t offset = image_writer->GetImageOffset(obj);
483 byte* dst = image_writer->image_->Begin() + offset;
484 const byte* src = reinterpret_cast<const byte*>(obj);
485 size_t n = obj->SizeOf();
486 DCHECK_LT(offset + n, image_writer->image_->Size());
487 memcpy(dst, src, n);
488 Object* copy = reinterpret_cast<Object*>(dst);
489 copy->SetField32(Object::MonitorOffset(), 0, false); // We may have inflated the lock during compilation.
490 image_writer->FixupObject(obj, copy);
491 }
492
FixupObject(const Object * orig,Object * copy)493 void ImageWriter::FixupObject(const Object* orig, Object* copy) {
494 DCHECK(orig != NULL);
495 DCHECK(copy != NULL);
496 copy->SetClass(down_cast<Class*>(GetImageAddress(orig->GetClass())));
497 // TODO: special case init of pointers to malloc data (or removal of these pointers)
498 if (orig->IsClass()) {
499 FixupClass(orig->AsClass(), down_cast<Class*>(copy));
500 } else if (orig->IsObjectArray()) {
501 FixupObjectArray(orig->AsObjectArray<Object>(), down_cast<ObjectArray<Object>*>(copy));
502 } else if (orig->IsArtMethod()) {
503 FixupMethod(orig->AsArtMethod(), down_cast<ArtMethod*>(copy));
504 } else {
505 FixupInstanceFields(orig, copy);
506 }
507 }
508
FixupClass(const Class * orig,Class * copy)509 void ImageWriter::FixupClass(const Class* orig, Class* copy) {
510 FixupInstanceFields(orig, copy);
511 FixupStaticFields(orig, copy);
512 }
513
FixupMethod(const ArtMethod * orig,ArtMethod * copy)514 void ImageWriter::FixupMethod(const ArtMethod* orig, ArtMethod* copy) {
515 FixupInstanceFields(orig, copy);
516
517 // OatWriter replaces the code_ with an offset value. Here we re-adjust to a pointer relative to
518 // oat_begin_
519
520 // The resolution method has a special trampoline to call.
521 if (UNLIKELY(orig == Runtime::Current()->GetResolutionMethod())) {
522 #if defined(ART_USE_PORTABLE_COMPILER)
523 copy->SetEntryPointFromCompiledCode(GetOatAddress(portable_resolution_trampoline_offset_));
524 #else
525 copy->SetEntryPointFromCompiledCode(GetOatAddress(quick_resolution_trampoline_offset_));
526 #endif
527 } else {
528 // We assume all methods have code. If they don't currently then we set them to the use the
529 // resolution trampoline. Abstract methods never have code and so we need to make sure their
530 // use results in an AbstractMethodError. We use the interpreter to achieve this.
531 if (UNLIKELY(orig->IsAbstract())) {
532 #if defined(ART_USE_PORTABLE_COMPILER)
533 copy->SetEntryPointFromCompiledCode(GetOatAddress(portable_to_interpreter_bridge_offset_));
534 #else
535 copy->SetEntryPointFromCompiledCode(GetOatAddress(quick_to_interpreter_bridge_offset_));
536 #endif
537 copy->SetEntryPointFromInterpreter(reinterpret_cast<EntryPointFromInterpreter*>
538 (GetOatAddress(interpreter_to_interpreter_bridge_offset_)));
539 } else {
540 copy->SetEntryPointFromInterpreter(reinterpret_cast<EntryPointFromInterpreter*>
541 (GetOatAddress(interpreter_to_compiled_code_bridge_offset_)));
542 // Use original code if it exists. Otherwise, set the code pointer to the resolution
543 // trampoline.
544 const byte* code = GetOatAddress(orig->GetOatCodeOffset());
545 if (code != NULL) {
546 copy->SetEntryPointFromCompiledCode(code);
547 } else {
548 #if defined(ART_USE_PORTABLE_COMPILER)
549 copy->SetEntryPointFromCompiledCode(GetOatAddress(portable_resolution_trampoline_offset_));
550 #else
551 copy->SetEntryPointFromCompiledCode(GetOatAddress(quick_resolution_trampoline_offset_));
552 #endif
553 }
554 if (orig->IsNative()) {
555 // The native method's pointer is set to a stub to lookup via dlsym.
556 // Note this is not the code_ pointer, that is handled above.
557 copy->SetNativeMethod(GetOatAddress(jni_dlsym_lookup_offset_));
558 } else {
559 // Normal (non-abstract non-native) methods have various tables to relocate.
560 uint32_t mapping_table_off = orig->GetOatMappingTableOffset();
561 const byte* mapping_table = GetOatAddress(mapping_table_off);
562 copy->SetMappingTable(mapping_table);
563
564 uint32_t vmap_table_offset = orig->GetOatVmapTableOffset();
565 const byte* vmap_table = GetOatAddress(vmap_table_offset);
566 copy->SetVmapTable(vmap_table);
567
568 uint32_t native_gc_map_offset = orig->GetOatNativeGcMapOffset();
569 const byte* native_gc_map = GetOatAddress(native_gc_map_offset);
570 copy->SetNativeGcMap(reinterpret_cast<const uint8_t*>(native_gc_map));
571 }
572 }
573 }
574 }
575
FixupObjectArray(const ObjectArray<Object> * orig,ObjectArray<Object> * copy)576 void ImageWriter::FixupObjectArray(const ObjectArray<Object>* orig, ObjectArray<Object>* copy) {
577 for (int32_t i = 0; i < orig->GetLength(); ++i) {
578 const Object* element = orig->Get(i);
579 copy->SetPtrWithoutChecks(i, GetImageAddress(element));
580 }
581 }
582
FixupInstanceFields(const Object * orig,Object * copy)583 void ImageWriter::FixupInstanceFields(const Object* orig, Object* copy) {
584 DCHECK(orig != NULL);
585 DCHECK(copy != NULL);
586 Class* klass = orig->GetClass();
587 DCHECK(klass != NULL);
588 FixupFields(orig,
589 copy,
590 klass->GetReferenceInstanceOffsets(),
591 false);
592 }
593
FixupStaticFields(const Class * orig,Class * copy)594 void ImageWriter::FixupStaticFields(const Class* orig, Class* copy) {
595 DCHECK(orig != NULL);
596 DCHECK(copy != NULL);
597 FixupFields(orig,
598 copy,
599 orig->GetReferenceStaticOffsets(),
600 true);
601 }
602
FixupFields(const Object * orig,Object * copy,uint32_t ref_offsets,bool is_static)603 void ImageWriter::FixupFields(const Object* orig,
604 Object* copy,
605 uint32_t ref_offsets,
606 bool is_static) {
607 if (ref_offsets != CLASS_WALK_SUPER) {
608 // Found a reference offset bitmap. Fixup the specified offsets.
609 while (ref_offsets != 0) {
610 size_t right_shift = CLZ(ref_offsets);
611 MemberOffset byte_offset = CLASS_OFFSET_FROM_CLZ(right_shift);
612 const Object* ref = orig->GetFieldObject<const Object*>(byte_offset, false);
613 // Use SetFieldPtr to avoid card marking since we are writing to the image.
614 copy->SetFieldPtr(byte_offset, GetImageAddress(ref), false);
615 ref_offsets &= ~(CLASS_HIGH_BIT >> right_shift);
616 }
617 } else {
618 // There is no reference offset bitmap. In the non-static case,
619 // walk up the class inheritance hierarchy and find reference
620 // offsets the hard way. In the static case, just consider this
621 // class.
622 for (const Class *klass = is_static ? orig->AsClass() : orig->GetClass();
623 klass != NULL;
624 klass = is_static ? NULL : klass->GetSuperClass()) {
625 size_t num_reference_fields = (is_static
626 ? klass->NumReferenceStaticFields()
627 : klass->NumReferenceInstanceFields());
628 for (size_t i = 0; i < num_reference_fields; ++i) {
629 ArtField* field = (is_static
630 ? klass->GetStaticField(i)
631 : klass->GetInstanceField(i));
632 MemberOffset field_offset = field->GetOffset();
633 const Object* ref = orig->GetFieldObject<const Object*>(field_offset, false);
634 // Use SetFieldPtr to avoid card marking since we are writing to the image.
635 copy->SetFieldPtr(field_offset, GetImageAddress(ref), false);
636 }
637 }
638 }
639 if (!is_static && orig->IsReferenceInstance()) {
640 // Fix-up referent, that isn't marked as an object field, for References.
641 ArtField* field = orig->GetClass()->FindInstanceField("referent", "Ljava/lang/Object;");
642 MemberOffset field_offset = field->GetOffset();
643 const Object* ref = orig->GetFieldObject<const Object*>(field_offset, false);
644 // Use SetFieldPtr to avoid card marking since we are writing to the image.
645 copy->SetFieldPtr(field_offset, GetImageAddress(ref), false);
646 }
647 }
648
GetTargetMethod(const CompilerDriver::PatchInformation * patch)649 static ArtMethod* GetTargetMethod(const CompilerDriver::PatchInformation* patch)
650 SHARED_LOCKS_REQUIRED(Locks::mutator_lock_) {
651 ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
652 DexCache* dex_cache = class_linker->FindDexCache(patch->GetDexFile());
653 ArtMethod* method = class_linker->ResolveMethod(patch->GetDexFile(),
654 patch->GetTargetMethodIdx(),
655 dex_cache,
656 NULL,
657 NULL,
658 patch->GetTargetInvokeType());
659 CHECK(method != NULL)
660 << patch->GetDexFile().GetLocation() << " " << patch->GetTargetMethodIdx();
661 CHECK(!method->IsRuntimeMethod())
662 << patch->GetDexFile().GetLocation() << " " << patch->GetTargetMethodIdx();
663 CHECK(dex_cache->GetResolvedMethods()->Get(patch->GetTargetMethodIdx()) == method)
664 << patch->GetDexFile().GetLocation() << " " << patch->GetReferrerMethodIdx() << " "
665 << PrettyMethod(dex_cache->GetResolvedMethods()->Get(patch->GetTargetMethodIdx())) << " "
666 << PrettyMethod(method);
667 return method;
668 }
669
PatchOatCodeAndMethods()670 void ImageWriter::PatchOatCodeAndMethods() {
671 Thread* self = Thread::Current();
672 ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
673 const char* old_cause = self->StartAssertNoThreadSuspension("ImageWriter");
674
675 typedef std::vector<const CompilerDriver::PatchInformation*> Patches;
676 const Patches& code_to_patch = compiler_driver_.GetCodeToPatch();
677 for (size_t i = 0; i < code_to_patch.size(); i++) {
678 const CompilerDriver::PatchInformation* patch = code_to_patch[i];
679 ArtMethod* target = GetTargetMethod(patch);
680 uint32_t code = reinterpret_cast<uint32_t>(class_linker->GetOatCodeFor(target));
681 uint32_t code_base = reinterpret_cast<uint32_t>(&oat_file_->GetOatHeader());
682 uint32_t code_offset = code - code_base;
683 SetPatchLocation(patch, reinterpret_cast<uint32_t>(GetOatAddress(code_offset)));
684 }
685
686 const Patches& methods_to_patch = compiler_driver_.GetMethodsToPatch();
687 for (size_t i = 0; i < methods_to_patch.size(); i++) {
688 const CompilerDriver::PatchInformation* patch = methods_to_patch[i];
689 ArtMethod* target = GetTargetMethod(patch);
690 SetPatchLocation(patch, reinterpret_cast<uint32_t>(GetImageAddress(target)));
691 }
692
693 // Update the image header with the new checksum after patching
694 ImageHeader* image_header = reinterpret_cast<ImageHeader*>(image_->Begin());
695 image_header->SetOatChecksum(oat_file_->GetOatHeader().GetChecksum());
696 self->EndAssertNoThreadSuspension(old_cause);
697 }
698
SetPatchLocation(const CompilerDriver::PatchInformation * patch,uint32_t value)699 void ImageWriter::SetPatchLocation(const CompilerDriver::PatchInformation* patch, uint32_t value) {
700 ClassLinker* class_linker = Runtime::Current()->GetClassLinker();
701 const void* oat_code = class_linker->GetOatCodeFor(patch->GetDexFile(),
702 patch->GetReferrerClassDefIdx(),
703 patch->GetReferrerMethodIdx());
704 OatHeader& oat_header = const_cast<OatHeader&>(oat_file_->GetOatHeader());
705 // TODO: make this Thumb2 specific
706 uint8_t* base = reinterpret_cast<uint8_t*>(reinterpret_cast<uint32_t>(oat_code) & ~0x1);
707 uint32_t* patch_location = reinterpret_cast<uint32_t*>(base + patch->GetLiteralOffset());
708 #ifndef NDEBUG
709 const DexFile::MethodId& id = patch->GetDexFile().GetMethodId(patch->GetTargetMethodIdx());
710 uint32_t expected = reinterpret_cast<uint32_t>(&id);
711 uint32_t actual = *patch_location;
712 CHECK(actual == expected || actual == value) << std::hex
713 << "actual=" << actual
714 << "expected=" << expected
715 << "value=" << value;
716 #endif
717 *patch_location = value;
718 oat_header.UpdateChecksum(patch_location, sizeof(value));
719 }
720
721 } // namespace art
722