blob: 009d5495478152aeb6dfdb4808cc8a92375e1a58 [file] [log] [blame]
David Brazdildee58d62016-04-07 09:54:26 +00001/*
2 * Copyright (C) 2016 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 "instruction_builder.h"
18
Matthew Gharrity465ecc82016-07-19 21:32:52 +000019#include "art_method-inl.h"
David Brazdildee58d62016-04-07 09:54:26 +000020#include "bytecode_utils.h"
21#include "class_linker.h"
Andreas Gampe26de38b2016-07-27 17:53:11 -070022#include "dex_instruction-inl.h"
David Brazdildee58d62016-04-07 09:54:26 +000023#include "driver/compiler_options.h"
Andreas Gampe75a7db62016-09-26 12:04:26 -070024#include "imtable-inl.h"
Mathieu Chartier0795f232016-09-27 18:43:30 -070025#include "scoped_thread_state_change-inl.h"
David Brazdildee58d62016-04-07 09:54:26 +000026
27namespace art {
28
29void HInstructionBuilder::MaybeRecordStat(MethodCompilationStat compilation_stat) {
30 if (compilation_stats_ != nullptr) {
31 compilation_stats_->RecordStat(compilation_stat);
32 }
33}
34
35HBasicBlock* HInstructionBuilder::FindBlockStartingAt(uint32_t dex_pc) const {
36 return block_builder_->GetBlockAt(dex_pc);
37}
38
39ArenaVector<HInstruction*>* HInstructionBuilder::GetLocalsFor(HBasicBlock* block) {
40 ArenaVector<HInstruction*>* locals = &locals_for_[block->GetBlockId()];
41 const size_t vregs = graph_->GetNumberOfVRegs();
42 if (locals->size() != vregs) {
43 locals->resize(vregs, nullptr);
44
45 if (block->IsCatchBlock()) {
46 // We record incoming inputs of catch phis at throwing instructions and
47 // must therefore eagerly create the phis. Phis for undefined vregs will
48 // be deleted when the first throwing instruction with the vreg undefined
49 // is encountered. Unused phis will be removed by dead phi analysis.
50 for (size_t i = 0; i < vregs; ++i) {
51 // No point in creating the catch phi if it is already undefined at
52 // the first throwing instruction.
53 HInstruction* current_local_value = (*current_locals_)[i];
54 if (current_local_value != nullptr) {
55 HPhi* phi = new (arena_) HPhi(
56 arena_,
57 i,
58 0,
59 current_local_value->GetType());
60 block->AddPhi(phi);
61 (*locals)[i] = phi;
62 }
63 }
64 }
65 }
66 return locals;
67}
68
69HInstruction* HInstructionBuilder::ValueOfLocalAt(HBasicBlock* block, size_t local) {
70 ArenaVector<HInstruction*>* locals = GetLocalsFor(block);
71 return (*locals)[local];
72}
73
74void HInstructionBuilder::InitializeBlockLocals() {
75 current_locals_ = GetLocalsFor(current_block_);
76
77 if (current_block_->IsCatchBlock()) {
78 // Catch phis were already created and inputs collected from throwing sites.
79 if (kIsDebugBuild) {
80 // Make sure there was at least one throwing instruction which initialized
81 // locals (guaranteed by HGraphBuilder) and that all try blocks have been
82 // visited already (from HTryBoundary scoping and reverse post order).
83 bool catch_block_visited = false;
Vladimir Marko2c45bc92016-10-25 16:54:12 +010084 for (HBasicBlock* current : graph_->GetReversePostOrder()) {
David Brazdildee58d62016-04-07 09:54:26 +000085 if (current == current_block_) {
86 catch_block_visited = true;
87 } else if (current->IsTryBlock()) {
88 const HTryBoundary& try_entry = current->GetTryCatchInformation()->GetTryEntry();
89 if (try_entry.HasExceptionHandler(*current_block_)) {
90 DCHECK(!catch_block_visited) << "Catch block visited before its try block.";
91 }
92 }
93 }
94 DCHECK_EQ(current_locals_->size(), graph_->GetNumberOfVRegs())
95 << "No instructions throwing into a live catch block.";
96 }
97 } else if (current_block_->IsLoopHeader()) {
98 // If the block is a loop header, we know we only have visited the pre header
99 // because we are visiting in reverse post order. We create phis for all initialized
100 // locals from the pre header. Their inputs will be populated at the end of
101 // the analysis.
102 for (size_t local = 0; local < current_locals_->size(); ++local) {
103 HInstruction* incoming =
104 ValueOfLocalAt(current_block_->GetLoopInformation()->GetPreHeader(), local);
105 if (incoming != nullptr) {
106 HPhi* phi = new (arena_) HPhi(
107 arena_,
108 local,
109 0,
110 incoming->GetType());
111 current_block_->AddPhi(phi);
112 (*current_locals_)[local] = phi;
113 }
114 }
115
116 // Save the loop header so that the last phase of the analysis knows which
117 // blocks need to be updated.
118 loop_headers_.push_back(current_block_);
119 } else if (current_block_->GetPredecessors().size() > 0) {
120 // All predecessors have already been visited because we are visiting in reverse post order.
121 // We merge the values of all locals, creating phis if those values differ.
122 for (size_t local = 0; local < current_locals_->size(); ++local) {
123 bool one_predecessor_has_no_value = false;
124 bool is_different = false;
125 HInstruction* value = ValueOfLocalAt(current_block_->GetPredecessors()[0], local);
126
127 for (HBasicBlock* predecessor : current_block_->GetPredecessors()) {
128 HInstruction* current = ValueOfLocalAt(predecessor, local);
129 if (current == nullptr) {
130 one_predecessor_has_no_value = true;
131 break;
132 } else if (current != value) {
133 is_different = true;
134 }
135 }
136
137 if (one_predecessor_has_no_value) {
138 // If one predecessor has no value for this local, we trust the verifier has
139 // successfully checked that there is a store dominating any read after this block.
140 continue;
141 }
142
143 if (is_different) {
144 HInstruction* first_input = ValueOfLocalAt(current_block_->GetPredecessors()[0], local);
145 HPhi* phi = new (arena_) HPhi(
146 arena_,
147 local,
148 current_block_->GetPredecessors().size(),
149 first_input->GetType());
150 for (size_t i = 0; i < current_block_->GetPredecessors().size(); i++) {
151 HInstruction* pred_value = ValueOfLocalAt(current_block_->GetPredecessors()[i], local);
152 phi->SetRawInputAt(i, pred_value);
153 }
154 current_block_->AddPhi(phi);
155 value = phi;
156 }
157 (*current_locals_)[local] = value;
158 }
159 }
160}
161
162void HInstructionBuilder::PropagateLocalsToCatchBlocks() {
163 const HTryBoundary& try_entry = current_block_->GetTryCatchInformation()->GetTryEntry();
164 for (HBasicBlock* catch_block : try_entry.GetExceptionHandlers()) {
165 ArenaVector<HInstruction*>* handler_locals = GetLocalsFor(catch_block);
166 DCHECK_EQ(handler_locals->size(), current_locals_->size());
167 for (size_t vreg = 0, e = current_locals_->size(); vreg < e; ++vreg) {
168 HInstruction* handler_value = (*handler_locals)[vreg];
169 if (handler_value == nullptr) {
170 // Vreg was undefined at a previously encountered throwing instruction
171 // and the catch phi was deleted. Do not record the local value.
172 continue;
173 }
174 DCHECK(handler_value->IsPhi());
175
176 HInstruction* local_value = (*current_locals_)[vreg];
177 if (local_value == nullptr) {
178 // This is the first instruction throwing into `catch_block` where
179 // `vreg` is undefined. Delete the catch phi.
180 catch_block->RemovePhi(handler_value->AsPhi());
181 (*handler_locals)[vreg] = nullptr;
182 } else {
183 // Vreg has been defined at all instructions throwing into `catch_block`
184 // encountered so far. Record the local value in the catch phi.
185 handler_value->AsPhi()->AddInput(local_value);
186 }
187 }
188 }
189}
190
191void HInstructionBuilder::AppendInstruction(HInstruction* instruction) {
192 current_block_->AddInstruction(instruction);
193 InitializeInstruction(instruction);
194}
195
196void HInstructionBuilder::InsertInstructionAtTop(HInstruction* instruction) {
197 if (current_block_->GetInstructions().IsEmpty()) {
198 current_block_->AddInstruction(instruction);
199 } else {
200 current_block_->InsertInstructionBefore(instruction, current_block_->GetFirstInstruction());
201 }
202 InitializeInstruction(instruction);
203}
204
205void HInstructionBuilder::InitializeInstruction(HInstruction* instruction) {
206 if (instruction->NeedsEnvironment()) {
207 HEnvironment* environment = new (arena_) HEnvironment(
208 arena_,
209 current_locals_->size(),
210 graph_->GetDexFile(),
211 graph_->GetMethodIdx(),
212 instruction->GetDexPc(),
213 graph_->GetInvokeType(),
214 instruction);
215 environment->CopyFrom(*current_locals_);
216 instruction->SetRawEnvironment(environment);
217 }
218}
219
David Brazdilc120bbe2016-04-22 16:57:00 +0100220HInstruction* HInstructionBuilder::LoadNullCheckedLocal(uint32_t register_index, uint32_t dex_pc) {
221 HInstruction* ref = LoadLocal(register_index, Primitive::kPrimNot);
222 if (!ref->CanBeNull()) {
223 return ref;
224 }
225
226 HNullCheck* null_check = new (arena_) HNullCheck(ref, dex_pc);
227 AppendInstruction(null_check);
228 return null_check;
229}
230
David Brazdildee58d62016-04-07 09:54:26 +0000231void HInstructionBuilder::SetLoopHeaderPhiInputs() {
232 for (size_t i = loop_headers_.size(); i > 0; --i) {
233 HBasicBlock* block = loop_headers_[i - 1];
234 for (HInstructionIterator it(block->GetPhis()); !it.Done(); it.Advance()) {
235 HPhi* phi = it.Current()->AsPhi();
236 size_t vreg = phi->GetRegNumber();
237 for (HBasicBlock* predecessor : block->GetPredecessors()) {
238 HInstruction* value = ValueOfLocalAt(predecessor, vreg);
239 if (value == nullptr) {
240 // Vreg is undefined at this predecessor. Mark it dead and leave with
241 // fewer inputs than predecessors. SsaChecker will fail if not removed.
242 phi->SetDead();
243 break;
244 } else {
245 phi->AddInput(value);
246 }
247 }
248 }
249 }
250}
251
252static bool IsBlockPopulated(HBasicBlock* block) {
253 if (block->IsLoopHeader()) {
254 // Suspend checks were inserted into loop headers during building of dominator tree.
255 DCHECK(block->GetFirstInstruction()->IsSuspendCheck());
256 return block->GetFirstInstruction() != block->GetLastInstruction();
257 } else {
258 return !block->GetInstructions().IsEmpty();
259 }
260}
261
262bool HInstructionBuilder::Build() {
263 locals_for_.resize(graph_->GetBlocks().size(),
264 ArenaVector<HInstruction*>(arena_->Adapter(kArenaAllocGraphBuilder)));
265
266 // Find locations where we want to generate extra stackmaps for native debugging.
267 // This allows us to generate the info only at interesting points (for example,
268 // at start of java statement) rather than before every dex instruction.
269 const bool native_debuggable = compiler_driver_ != nullptr &&
270 compiler_driver_->GetCompilerOptions().GetNativeDebuggable();
271 ArenaBitVector* native_debug_info_locations = nullptr;
272 if (native_debuggable) {
273 const uint32_t num_instructions = code_item_.insns_size_in_code_units_;
274 native_debug_info_locations = new (arena_) ArenaBitVector (arena_, num_instructions, false);
275 FindNativeDebugInfoLocations(native_debug_info_locations);
276 }
277
Vladimir Marko2c45bc92016-10-25 16:54:12 +0100278 for (HBasicBlock* block : graph_->GetReversePostOrder()) {
279 current_block_ = block;
David Brazdildee58d62016-04-07 09:54:26 +0000280 uint32_t block_dex_pc = current_block_->GetDexPc();
281
282 InitializeBlockLocals();
283
284 if (current_block_->IsEntryBlock()) {
285 InitializeParameters();
286 AppendInstruction(new (arena_) HSuspendCheck(0u));
287 AppendInstruction(new (arena_) HGoto(0u));
288 continue;
289 } else if (current_block_->IsExitBlock()) {
290 AppendInstruction(new (arena_) HExit());
291 continue;
292 } else if (current_block_->IsLoopHeader()) {
293 HSuspendCheck* suspend_check = new (arena_) HSuspendCheck(current_block_->GetDexPc());
294 current_block_->GetLoopInformation()->SetSuspendCheck(suspend_check);
295 // This is slightly odd because the loop header might not be empty (TryBoundary).
296 // But we're still creating the environment with locals from the top of the block.
297 InsertInstructionAtTop(suspend_check);
298 }
299
300 if (block_dex_pc == kNoDexPc || current_block_ != block_builder_->GetBlockAt(block_dex_pc)) {
301 // Synthetic block that does not need to be populated.
302 DCHECK(IsBlockPopulated(current_block_));
303 continue;
304 }
305
306 DCHECK(!IsBlockPopulated(current_block_));
307
308 for (CodeItemIterator it(code_item_, block_dex_pc); !it.Done(); it.Advance()) {
309 if (current_block_ == nullptr) {
310 // The previous instruction ended this block.
311 break;
312 }
313
314 uint32_t dex_pc = it.CurrentDexPc();
315 if (dex_pc != block_dex_pc && FindBlockStartingAt(dex_pc) != nullptr) {
316 // This dex_pc starts a new basic block.
317 break;
318 }
319
320 if (current_block_->IsTryBlock() && IsThrowingDexInstruction(it.CurrentInstruction())) {
321 PropagateLocalsToCatchBlocks();
322 }
323
324 if (native_debuggable && native_debug_info_locations->IsBitSet(dex_pc)) {
325 AppendInstruction(new (arena_) HNativeDebugInfo(dex_pc));
326 }
327
328 if (!ProcessDexInstruction(it.CurrentInstruction(), dex_pc)) {
329 return false;
330 }
331 }
332
333 if (current_block_ != nullptr) {
334 // Branching instructions clear current_block, so we know the last
335 // instruction of the current block is not a branching instruction.
336 // We add an unconditional Goto to the next block.
337 DCHECK_EQ(current_block_->GetSuccessors().size(), 1u);
338 AppendInstruction(new (arena_) HGoto());
339 }
340 }
341
342 SetLoopHeaderPhiInputs();
343
344 return true;
345}
346
347void HInstructionBuilder::FindNativeDebugInfoLocations(ArenaBitVector* locations) {
348 // The callback gets called when the line number changes.
349 // In other words, it marks the start of new java statement.
350 struct Callback {
351 static bool Position(void* ctx, const DexFile::PositionInfo& entry) {
352 static_cast<ArenaBitVector*>(ctx)->SetBit(entry.address_);
353 return false;
354 }
355 };
356 dex_file_->DecodeDebugPositionInfo(&code_item_, Callback::Position, locations);
357 // Instruction-specific tweaks.
358 const Instruction* const begin = Instruction::At(code_item_.insns_);
359 const Instruction* const end = begin->RelativeAt(code_item_.insns_size_in_code_units_);
360 for (const Instruction* inst = begin; inst < end; inst = inst->Next()) {
361 switch (inst->Opcode()) {
362 case Instruction::MOVE_EXCEPTION: {
363 // Stop in native debugger after the exception has been moved.
364 // The compiler also expects the move at the start of basic block so
365 // we do not want to interfere by inserting native-debug-info before it.
366 locations->ClearBit(inst->GetDexPc(code_item_.insns_));
367 const Instruction* next = inst->Next();
368 if (next < end) {
369 locations->SetBit(next->GetDexPc(code_item_.insns_));
370 }
371 break;
372 }
373 default:
374 break;
375 }
376 }
377}
378
379HInstruction* HInstructionBuilder::LoadLocal(uint32_t reg_number, Primitive::Type type) const {
380 HInstruction* value = (*current_locals_)[reg_number];
381 DCHECK(value != nullptr);
382
383 // If the operation requests a specific type, we make sure its input is of that type.
384 if (type != value->GetType()) {
385 if (Primitive::IsFloatingPointType(type)) {
Aart Bik31883642016-06-06 15:02:44 -0700386 value = ssa_builder_->GetFloatOrDoubleEquivalent(value, type);
David Brazdildee58d62016-04-07 09:54:26 +0000387 } else if (type == Primitive::kPrimNot) {
Aart Bik31883642016-06-06 15:02:44 -0700388 value = ssa_builder_->GetReferenceTypeEquivalent(value);
David Brazdildee58d62016-04-07 09:54:26 +0000389 }
Aart Bik31883642016-06-06 15:02:44 -0700390 DCHECK(value != nullptr);
David Brazdildee58d62016-04-07 09:54:26 +0000391 }
392
393 return value;
394}
395
396void HInstructionBuilder::UpdateLocal(uint32_t reg_number, HInstruction* stored_value) {
397 Primitive::Type stored_type = stored_value->GetType();
398 DCHECK_NE(stored_type, Primitive::kPrimVoid);
399
400 // Storing into vreg `reg_number` may implicitly invalidate the surrounding
401 // registers. Consider the following cases:
402 // (1) Storing a wide value must overwrite previous values in both `reg_number`
403 // and `reg_number+1`. We store `nullptr` in `reg_number+1`.
404 // (2) If vreg `reg_number-1` holds a wide value, writing into `reg_number`
405 // must invalidate it. We store `nullptr` in `reg_number-1`.
406 // Consequently, storing a wide value into the high vreg of another wide value
407 // will invalidate both `reg_number-1` and `reg_number+1`.
408
409 if (reg_number != 0) {
410 HInstruction* local_low = (*current_locals_)[reg_number - 1];
411 if (local_low != nullptr && Primitive::Is64BitType(local_low->GetType())) {
412 // The vreg we are storing into was previously the high vreg of a pair.
413 // We need to invalidate its low vreg.
414 DCHECK((*current_locals_)[reg_number] == nullptr);
415 (*current_locals_)[reg_number - 1] = nullptr;
416 }
417 }
418
419 (*current_locals_)[reg_number] = stored_value;
420 if (Primitive::Is64BitType(stored_type)) {
421 // We are storing a pair. Invalidate the instruction in the high vreg.
422 (*current_locals_)[reg_number + 1] = nullptr;
423 }
424}
425
426void HInstructionBuilder::InitializeParameters() {
427 DCHECK(current_block_->IsEntryBlock());
428
429 // dex_compilation_unit_ is null only when unit testing.
430 if (dex_compilation_unit_ == nullptr) {
431 return;
432 }
433
434 const char* shorty = dex_compilation_unit_->GetShorty();
435 uint16_t number_of_parameters = graph_->GetNumberOfInVRegs();
436 uint16_t locals_index = graph_->GetNumberOfLocalVRegs();
437 uint16_t parameter_index = 0;
438
439 const DexFile::MethodId& referrer_method_id =
440 dex_file_->GetMethodId(dex_compilation_unit_->GetDexMethodIndex());
441 if (!dex_compilation_unit_->IsStatic()) {
442 // Add the implicit 'this' argument, not expressed in the signature.
443 HParameterValue* parameter = new (arena_) HParameterValue(*dex_file_,
444 referrer_method_id.class_idx_,
445 parameter_index++,
446 Primitive::kPrimNot,
447 true);
448 AppendInstruction(parameter);
449 UpdateLocal(locals_index++, parameter);
450 number_of_parameters--;
451 }
452
453 const DexFile::ProtoId& proto = dex_file_->GetMethodPrototype(referrer_method_id);
454 const DexFile::TypeList* arg_types = dex_file_->GetProtoParameters(proto);
455 for (int i = 0, shorty_pos = 1; i < number_of_parameters; i++) {
456 HParameterValue* parameter = new (arena_) HParameterValue(
457 *dex_file_,
458 arg_types->GetTypeItem(shorty_pos - 1).type_idx_,
459 parameter_index++,
460 Primitive::GetType(shorty[shorty_pos]),
461 false);
462 ++shorty_pos;
463 AppendInstruction(parameter);
464 // Store the parameter value in the local that the dex code will use
465 // to reference that parameter.
466 UpdateLocal(locals_index++, parameter);
467 if (Primitive::Is64BitType(parameter->GetType())) {
468 i++;
469 locals_index++;
470 parameter_index++;
471 }
472 }
473}
474
475template<typename T>
476void HInstructionBuilder::If_22t(const Instruction& instruction, uint32_t dex_pc) {
477 HInstruction* first = LoadLocal(instruction.VRegA(), Primitive::kPrimInt);
478 HInstruction* second = LoadLocal(instruction.VRegB(), Primitive::kPrimInt);
479 T* comparison = new (arena_) T(first, second, dex_pc);
480 AppendInstruction(comparison);
481 AppendInstruction(new (arena_) HIf(comparison, dex_pc));
482 current_block_ = nullptr;
483}
484
485template<typename T>
486void HInstructionBuilder::If_21t(const Instruction& instruction, uint32_t dex_pc) {
487 HInstruction* value = LoadLocal(instruction.VRegA(), Primitive::kPrimInt);
488 T* comparison = new (arena_) T(value, graph_->GetIntConstant(0, dex_pc), dex_pc);
489 AppendInstruction(comparison);
490 AppendInstruction(new (arena_) HIf(comparison, dex_pc));
491 current_block_ = nullptr;
492}
493
494template<typename T>
495void HInstructionBuilder::Unop_12x(const Instruction& instruction,
496 Primitive::Type type,
497 uint32_t dex_pc) {
498 HInstruction* first = LoadLocal(instruction.VRegB(), type);
499 AppendInstruction(new (arena_) T(type, first, dex_pc));
500 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
501}
502
503void HInstructionBuilder::Conversion_12x(const Instruction& instruction,
504 Primitive::Type input_type,
505 Primitive::Type result_type,
506 uint32_t dex_pc) {
507 HInstruction* first = LoadLocal(instruction.VRegB(), input_type);
508 AppendInstruction(new (arena_) HTypeConversion(result_type, first, dex_pc));
509 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
510}
511
512template<typename T>
513void HInstructionBuilder::Binop_23x(const Instruction& instruction,
514 Primitive::Type type,
515 uint32_t dex_pc) {
516 HInstruction* first = LoadLocal(instruction.VRegB(), type);
517 HInstruction* second = LoadLocal(instruction.VRegC(), type);
518 AppendInstruction(new (arena_) T(type, first, second, dex_pc));
519 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
520}
521
522template<typename T>
523void HInstructionBuilder::Binop_23x_shift(const Instruction& instruction,
524 Primitive::Type type,
525 uint32_t dex_pc) {
526 HInstruction* first = LoadLocal(instruction.VRegB(), type);
527 HInstruction* second = LoadLocal(instruction.VRegC(), Primitive::kPrimInt);
528 AppendInstruction(new (arena_) T(type, first, second, dex_pc));
529 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
530}
531
532void HInstructionBuilder::Binop_23x_cmp(const Instruction& instruction,
533 Primitive::Type type,
534 ComparisonBias bias,
535 uint32_t dex_pc) {
536 HInstruction* first = LoadLocal(instruction.VRegB(), type);
537 HInstruction* second = LoadLocal(instruction.VRegC(), type);
538 AppendInstruction(new (arena_) HCompare(type, first, second, bias, dex_pc));
539 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
540}
541
542template<typename T>
543void HInstructionBuilder::Binop_12x_shift(const Instruction& instruction,
544 Primitive::Type type,
545 uint32_t dex_pc) {
546 HInstruction* first = LoadLocal(instruction.VRegA(), type);
547 HInstruction* second = LoadLocal(instruction.VRegB(), Primitive::kPrimInt);
548 AppendInstruction(new (arena_) T(type, first, second, dex_pc));
549 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
550}
551
552template<typename T>
553void HInstructionBuilder::Binop_12x(const Instruction& instruction,
554 Primitive::Type type,
555 uint32_t dex_pc) {
556 HInstruction* first = LoadLocal(instruction.VRegA(), type);
557 HInstruction* second = LoadLocal(instruction.VRegB(), type);
558 AppendInstruction(new (arena_) T(type, first, second, dex_pc));
559 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
560}
561
562template<typename T>
563void HInstructionBuilder::Binop_22s(const Instruction& instruction, bool reverse, uint32_t dex_pc) {
564 HInstruction* first = LoadLocal(instruction.VRegB(), Primitive::kPrimInt);
565 HInstruction* second = graph_->GetIntConstant(instruction.VRegC_22s(), dex_pc);
566 if (reverse) {
567 std::swap(first, second);
568 }
569 AppendInstruction(new (arena_) T(Primitive::kPrimInt, first, second, dex_pc));
570 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
571}
572
573template<typename T>
574void HInstructionBuilder::Binop_22b(const Instruction& instruction, bool reverse, uint32_t dex_pc) {
575 HInstruction* first = LoadLocal(instruction.VRegB(), Primitive::kPrimInt);
576 HInstruction* second = graph_->GetIntConstant(instruction.VRegC_22b(), dex_pc);
577 if (reverse) {
578 std::swap(first, second);
579 }
580 AppendInstruction(new (arena_) T(Primitive::kPrimInt, first, second, dex_pc));
581 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
582}
583
Mathieu Chartierc4ae9162016-04-07 13:19:19 -0700584static bool RequiresConstructorBarrier(const DexCompilationUnit* cu, CompilerDriver* driver) {
David Brazdildee58d62016-04-07 09:54:26 +0000585 Thread* self = Thread::Current();
586 return cu->IsConstructor()
Mathieu Chartierc4ae9162016-04-07 13:19:19 -0700587 && driver->RequiresConstructorBarrier(self, cu->GetDexFile(), cu->GetClassDefIndex());
David Brazdildee58d62016-04-07 09:54:26 +0000588}
589
590// Returns true if `block` has only one successor which starts at the next
591// dex_pc after `instruction` at `dex_pc`.
592static bool IsFallthroughInstruction(const Instruction& instruction,
593 uint32_t dex_pc,
594 HBasicBlock* block) {
595 uint32_t next_dex_pc = dex_pc + instruction.SizeInCodeUnits();
596 return block->GetSingleSuccessor()->GetDexPc() == next_dex_pc;
597}
598
599void HInstructionBuilder::BuildSwitch(const Instruction& instruction, uint32_t dex_pc) {
600 HInstruction* value = LoadLocal(instruction.VRegA(), Primitive::kPrimInt);
601 DexSwitchTable table(instruction, dex_pc);
602
603 if (table.GetNumEntries() == 0) {
604 // Empty Switch. Code falls through to the next block.
605 DCHECK(IsFallthroughInstruction(instruction, dex_pc, current_block_));
606 AppendInstruction(new (arena_) HGoto(dex_pc));
607 } else if (table.ShouldBuildDecisionTree()) {
608 for (DexSwitchTableIterator it(table); !it.Done(); it.Advance()) {
609 HInstruction* case_value = graph_->GetIntConstant(it.CurrentKey(), dex_pc);
610 HEqual* comparison = new (arena_) HEqual(value, case_value, dex_pc);
611 AppendInstruction(comparison);
612 AppendInstruction(new (arena_) HIf(comparison, dex_pc));
613
614 if (!it.IsLast()) {
615 current_block_ = FindBlockStartingAt(it.GetDexPcForCurrentIndex());
616 }
617 }
618 } else {
619 AppendInstruction(
620 new (arena_) HPackedSwitch(table.GetEntryAt(0), table.GetNumEntries(), value, dex_pc));
621 }
622
623 current_block_ = nullptr;
624}
625
626void HInstructionBuilder::BuildReturn(const Instruction& instruction,
627 Primitive::Type type,
628 uint32_t dex_pc) {
629 if (type == Primitive::kPrimVoid) {
630 if (graph_->ShouldGenerateConstructorBarrier()) {
631 // The compilation unit is null during testing.
632 if (dex_compilation_unit_ != nullptr) {
Mathieu Chartierc4ae9162016-04-07 13:19:19 -0700633 DCHECK(RequiresConstructorBarrier(dex_compilation_unit_, compiler_driver_))
David Brazdildee58d62016-04-07 09:54:26 +0000634 << "Inconsistent use of ShouldGenerateConstructorBarrier. Should not generate a barrier.";
635 }
636 AppendInstruction(new (arena_) HMemoryBarrier(kStoreStore, dex_pc));
637 }
638 AppendInstruction(new (arena_) HReturnVoid(dex_pc));
639 } else {
640 HInstruction* value = LoadLocal(instruction.VRegA(), type);
641 AppendInstruction(new (arena_) HReturn(value, dex_pc));
642 }
643 current_block_ = nullptr;
644}
645
646static InvokeType GetInvokeTypeFromOpCode(Instruction::Code opcode) {
647 switch (opcode) {
648 case Instruction::INVOKE_STATIC:
649 case Instruction::INVOKE_STATIC_RANGE:
650 return kStatic;
651 case Instruction::INVOKE_DIRECT:
652 case Instruction::INVOKE_DIRECT_RANGE:
653 return kDirect;
654 case Instruction::INVOKE_VIRTUAL:
655 case Instruction::INVOKE_VIRTUAL_QUICK:
656 case Instruction::INVOKE_VIRTUAL_RANGE:
657 case Instruction::INVOKE_VIRTUAL_RANGE_QUICK:
658 return kVirtual;
659 case Instruction::INVOKE_INTERFACE:
660 case Instruction::INVOKE_INTERFACE_RANGE:
661 return kInterface;
662 case Instruction::INVOKE_SUPER_RANGE:
663 case Instruction::INVOKE_SUPER:
664 return kSuper;
665 default:
666 LOG(FATAL) << "Unexpected invoke opcode: " << opcode;
667 UNREACHABLE();
668 }
669}
670
671ArtMethod* HInstructionBuilder::ResolveMethod(uint16_t method_idx, InvokeType invoke_type) {
672 ScopedObjectAccess soa(Thread::Current());
673 StackHandleScope<3> hs(soa.Self());
674
675 ClassLinker* class_linker = dex_compilation_unit_->GetClassLinker();
676 Handle<mirror::ClassLoader> class_loader(hs.NewHandle(
Mathieu Chartier0795f232016-09-27 18:43:30 -0700677 soa.Decode<mirror::ClassLoader>(dex_compilation_unit_->GetClassLoader())));
David Brazdildee58d62016-04-07 09:54:26 +0000678 Handle<mirror::Class> compiling_class(hs.NewHandle(GetCompilingClass()));
Nicolas Geoffray393fdb82016-04-25 14:58:06 +0100679 // We fetch the referenced class eagerly (that is, the class pointed by in the MethodId
680 // at method_idx), as `CanAccessResolvedMethod` expects it be be in the dex cache.
681 Handle<mirror::Class> methods_class(hs.NewHandle(class_linker->ResolveReferencedClassOfMethod(
682 method_idx, dex_compilation_unit_->GetDexCache(), class_loader)));
683
684 if (UNLIKELY(methods_class.Get() == nullptr)) {
685 // Clean up any exception left by type resolution.
686 soa.Self()->ClearException();
687 return nullptr;
688 }
David Brazdildee58d62016-04-07 09:54:26 +0000689
690 ArtMethod* resolved_method = class_linker->ResolveMethod<ClassLinker::kForceICCECheck>(
691 *dex_compilation_unit_->GetDexFile(),
692 method_idx,
693 dex_compilation_unit_->GetDexCache(),
694 class_loader,
695 /* referrer */ nullptr,
696 invoke_type);
697
698 if (UNLIKELY(resolved_method == nullptr)) {
699 // Clean up any exception left by type resolution.
700 soa.Self()->ClearException();
701 return nullptr;
702 }
703
704 // Check access. The class linker has a fast path for looking into the dex cache
705 // and does not check the access if it hits it.
706 if (compiling_class.Get() == nullptr) {
707 if (!resolved_method->IsPublic()) {
708 return nullptr;
709 }
710 } else if (!compiling_class->CanAccessResolvedMethod(resolved_method->GetDeclaringClass(),
711 resolved_method,
712 dex_compilation_unit_->GetDexCache().Get(),
713 method_idx)) {
714 return nullptr;
715 }
716
717 // We have to special case the invoke-super case, as ClassLinker::ResolveMethod does not.
718 // We need to look at the referrer's super class vtable. We need to do this to know if we need to
719 // make this an invoke-unresolved to handle cross-dex invokes or abstract super methods, both of
720 // which require runtime handling.
721 if (invoke_type == kSuper) {
722 if (compiling_class.Get() == nullptr) {
723 // We could not determine the method's class we need to wait until runtime.
724 DCHECK(Runtime::Current()->IsAotCompiler());
725 return nullptr;
726 }
Aart Bikf663e342016-04-04 17:28:59 -0700727 if (!methods_class->IsAssignableFrom(compiling_class.Get())) {
728 // We cannot statically determine the target method. The runtime will throw a
729 // NoSuchMethodError on this one.
730 return nullptr;
731 }
Nicolas Geoffray393fdb82016-04-25 14:58:06 +0100732 ArtMethod* actual_method;
733 if (methods_class->IsInterface()) {
734 actual_method = methods_class->FindVirtualMethodForInterfaceSuper(
735 resolved_method, class_linker->GetImagePointerSize());
David Brazdildee58d62016-04-07 09:54:26 +0000736 } else {
Nicolas Geoffray393fdb82016-04-25 14:58:06 +0100737 uint16_t vtable_index = resolved_method->GetMethodIndex();
738 actual_method = compiling_class->GetSuperClass()->GetVTableEntry(
739 vtable_index, class_linker->GetImagePointerSize());
David Brazdildee58d62016-04-07 09:54:26 +0000740 }
Nicolas Geoffray393fdb82016-04-25 14:58:06 +0100741 if (actual_method != resolved_method &&
742 !IsSameDexFile(*actual_method->GetDexFile(), *dex_compilation_unit_->GetDexFile())) {
743 // The back-end code generator relies on this check in order to ensure that it will not
744 // attempt to read the dex_cache with a dex_method_index that is not from the correct
745 // dex_file. If we didn't do this check then the dex_method_index will not be updated in the
746 // builder, which means that the code-generator (and compiler driver during sharpening and
747 // inliner, maybe) might invoke an incorrect method.
748 // TODO: The actual method could still be referenced in the current dex file, so we
749 // could try locating it.
750 // TODO: Remove the dex_file restriction.
751 return nullptr;
752 }
753 if (!actual_method->IsInvokable()) {
754 // Fail if the actual method cannot be invoked. Otherwise, the runtime resolution stub
755 // could resolve the callee to the wrong method.
756 return nullptr;
757 }
758 resolved_method = actual_method;
David Brazdildee58d62016-04-07 09:54:26 +0000759 }
760
761 // Check for incompatible class changes. The class linker has a fast path for
762 // looking into the dex cache and does not check incompatible class changes if it hits it.
763 if (resolved_method->CheckIncompatibleClassChange(invoke_type)) {
764 return nullptr;
765 }
766
767 return resolved_method;
768}
769
Nicolas Geoffrayda079bb2016-09-26 17:56:07 +0100770static bool IsStringConstructor(ArtMethod* method) {
771 ScopedObjectAccess soa(Thread::Current());
772 return method->GetDeclaringClass()->IsStringClass() && method->IsConstructor();
773}
774
David Brazdildee58d62016-04-07 09:54:26 +0000775bool HInstructionBuilder::BuildInvoke(const Instruction& instruction,
776 uint32_t dex_pc,
777 uint32_t method_idx,
778 uint32_t number_of_vreg_arguments,
779 bool is_range,
780 uint32_t* args,
781 uint32_t register_index) {
782 InvokeType invoke_type = GetInvokeTypeFromOpCode(instruction.Opcode());
783 const char* descriptor = dex_file_->GetMethodShorty(method_idx);
784 Primitive::Type return_type = Primitive::GetType(descriptor[0]);
785
786 // Remove the return type from the 'proto'.
787 size_t number_of_arguments = strlen(descriptor) - 1;
788 if (invoke_type != kStatic) { // instance call
789 // One extra argument for 'this'.
790 number_of_arguments++;
791 }
792
David Brazdildee58d62016-04-07 09:54:26 +0000793 ArtMethod* resolved_method = ResolveMethod(method_idx, invoke_type);
794
795 if (UNLIKELY(resolved_method == nullptr)) {
796 MaybeRecordStat(MethodCompilationStat::kUnresolvedMethod);
797 HInvoke* invoke = new (arena_) HInvokeUnresolved(arena_,
798 number_of_arguments,
799 return_type,
800 dex_pc,
801 method_idx,
802 invoke_type);
803 return HandleInvoke(invoke,
804 number_of_vreg_arguments,
805 args,
806 register_index,
807 is_range,
808 descriptor,
Aart Bik296fbb42016-06-07 13:49:12 -0700809 nullptr, /* clinit_check */
810 true /* is_unresolved */);
David Brazdildee58d62016-04-07 09:54:26 +0000811 }
812
Nicolas Geoffrayda079bb2016-09-26 17:56:07 +0100813 // Replace calls to String.<init> with StringFactory.
814 if (IsStringConstructor(resolved_method)) {
815 uint32_t string_init_entry_point = WellKnownClasses::StringInitToEntryPoint(resolved_method);
816 HInvokeStaticOrDirect::DispatchInfo dispatch_info = {
817 HInvokeStaticOrDirect::MethodLoadKind::kStringInit,
818 HInvokeStaticOrDirect::CodePtrLocation::kCallArtMethod,
Nicolas Geoffrayc1a42cf2016-12-18 15:52:36 +0000819 dchecked_integral_cast<uint64_t>(string_init_entry_point)
Nicolas Geoffrayda079bb2016-09-26 17:56:07 +0100820 };
821 MethodReference target_method(dex_file_, method_idx);
822 HInvoke* invoke = new (arena_) HInvokeStaticOrDirect(
823 arena_,
824 number_of_arguments - 1,
825 Primitive::kPrimNot /*return_type */,
826 dex_pc,
827 method_idx,
828 nullptr,
829 dispatch_info,
830 invoke_type,
831 target_method,
832 HInvokeStaticOrDirect::ClinitCheckRequirement::kImplicit);
833 return HandleStringInit(invoke,
834 number_of_vreg_arguments,
835 args,
836 register_index,
837 is_range,
838 descriptor);
839 }
840
David Brazdildee58d62016-04-07 09:54:26 +0000841 // Potential class initialization check, in the case of a static method call.
842 HClinitCheck* clinit_check = nullptr;
843 HInvoke* invoke = nullptr;
844 if (invoke_type == kDirect || invoke_type == kStatic || invoke_type == kSuper) {
845 // By default, consider that the called method implicitly requires
846 // an initialization check of its declaring method.
847 HInvokeStaticOrDirect::ClinitCheckRequirement clinit_check_requirement
848 = HInvokeStaticOrDirect::ClinitCheckRequirement::kImplicit;
849 ScopedObjectAccess soa(Thread::Current());
850 if (invoke_type == kStatic) {
851 clinit_check = ProcessClinitCheckForInvoke(
852 dex_pc, resolved_method, method_idx, &clinit_check_requirement);
853 } else if (invoke_type == kSuper) {
854 if (IsSameDexFile(*resolved_method->GetDexFile(), *dex_compilation_unit_->GetDexFile())) {
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100855 // Update the method index to the one resolved. Note that this may be a no-op if
David Brazdildee58d62016-04-07 09:54:26 +0000856 // we resolved to the method referenced by the instruction.
857 method_idx = resolved_method->GetDexMethodIndex();
David Brazdildee58d62016-04-07 09:54:26 +0000858 }
859 }
860
861 HInvokeStaticOrDirect::DispatchInfo dispatch_info = {
862 HInvokeStaticOrDirect::MethodLoadKind::kDexCacheViaMethod,
863 HInvokeStaticOrDirect::CodePtrLocation::kCallArtMethod,
Nicolas Geoffrayc1a42cf2016-12-18 15:52:36 +0000864 0u
David Brazdildee58d62016-04-07 09:54:26 +0000865 };
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100866 MethodReference target_method(resolved_method->GetDexFile(),
867 resolved_method->GetDexMethodIndex());
David Brazdildee58d62016-04-07 09:54:26 +0000868 invoke = new (arena_) HInvokeStaticOrDirect(arena_,
869 number_of_arguments,
870 return_type,
871 dex_pc,
872 method_idx,
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100873 resolved_method,
David Brazdildee58d62016-04-07 09:54:26 +0000874 dispatch_info,
875 invoke_type,
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100876 target_method,
David Brazdildee58d62016-04-07 09:54:26 +0000877 clinit_check_requirement);
878 } else if (invoke_type == kVirtual) {
879 ScopedObjectAccess soa(Thread::Current()); // Needed for the method index
880 invoke = new (arena_) HInvokeVirtual(arena_,
881 number_of_arguments,
882 return_type,
883 dex_pc,
884 method_idx,
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100885 resolved_method,
David Brazdildee58d62016-04-07 09:54:26 +0000886 resolved_method->GetMethodIndex());
887 } else {
888 DCHECK_EQ(invoke_type, kInterface);
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100889 ScopedObjectAccess soa(Thread::Current()); // Needed for the IMT index.
David Brazdildee58d62016-04-07 09:54:26 +0000890 invoke = new (arena_) HInvokeInterface(arena_,
891 number_of_arguments,
892 return_type,
893 dex_pc,
894 method_idx,
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +0100895 resolved_method,
Andreas Gampe75a7db62016-09-26 12:04:26 -0700896 ImTable::GetImtIndex(resolved_method));
David Brazdildee58d62016-04-07 09:54:26 +0000897 }
898
899 return HandleInvoke(invoke,
900 number_of_vreg_arguments,
901 args,
902 register_index,
903 is_range,
904 descriptor,
Aart Bik296fbb42016-06-07 13:49:12 -0700905 clinit_check,
906 false /* is_unresolved */);
David Brazdildee58d62016-04-07 09:54:26 +0000907}
908
Andreas Gampea5b09a62016-11-17 15:21:22 -0800909bool HInstructionBuilder::BuildNewInstance(dex::TypeIndex type_index, uint32_t dex_pc) {
Vladimir Marko3cd50df2016-04-13 19:29:26 +0100910 ScopedObjectAccess soa(Thread::Current());
911 StackHandleScope<1> hs(soa.Self());
912 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
913 Handle<mirror::Class> resolved_class(hs.NewHandle(dex_cache->GetResolvedType(type_index)));
914 const DexFile& outer_dex_file = *outer_compilation_unit_->GetDexFile();
915 Handle<mirror::DexCache> outer_dex_cache = outer_compilation_unit_->GetDexCache();
916
David Brazdildee58d62016-04-07 09:54:26 +0000917 bool finalizable;
Mingyao Yang062157f2016-03-02 10:15:36 -0800918 bool needs_access_check = NeedsAccessCheck(type_index, dex_cache, &finalizable);
David Brazdildee58d62016-04-07 09:54:26 +0000919
Nicolas Geoffray0d3998b2017-01-12 15:35:12 +0000920 // Only the access check entrypoint handles the finalizable class case. If we
David Brazdildee58d62016-04-07 09:54:26 +0000921 // need access checks, then we haven't resolved the method and the class may
922 // again be finalizable.
Mingyao Yang062157f2016-03-02 10:15:36 -0800923 QuickEntrypointEnum entrypoint = (finalizable || needs_access_check)
Nicolas Geoffray0d3998b2017-01-12 15:35:12 +0000924 ? kQuickAllocObjectWithChecks
David Brazdildee58d62016-04-07 09:54:26 +0000925 : kQuickAllocObjectInitialized;
926
David Brazdildee58d62016-04-07 09:54:26 +0000927 if (outer_dex_cache.Get() != dex_cache.Get()) {
928 // We currently do not support inlining allocations across dex files.
929 return false;
930 }
931
932 HLoadClass* load_class = new (arena_) HLoadClass(
933 graph_->GetCurrentMethod(),
934 type_index,
935 outer_dex_file,
936 IsOutermostCompilingClass(type_index),
937 dex_pc,
Nicolas Geoffray56876342016-12-16 16:09:08 +0000938 needs_access_check);
David Brazdildee58d62016-04-07 09:54:26 +0000939
940 AppendInstruction(load_class);
941 HInstruction* cls = load_class;
942 if (!IsInitialized(resolved_class)) {
943 cls = new (arena_) HClinitCheck(load_class, dex_pc);
944 AppendInstruction(cls);
945 }
946
947 AppendInstruction(new (arena_) HNewInstance(
948 cls,
David Brazdildee58d62016-04-07 09:54:26 +0000949 dex_pc,
950 type_index,
951 *dex_compilation_unit_->GetDexFile(),
Mingyao Yang062157f2016-03-02 10:15:36 -0800952 needs_access_check,
David Brazdildee58d62016-04-07 09:54:26 +0000953 finalizable,
954 entrypoint));
955 return true;
956}
957
958static bool IsSubClass(mirror::Class* to_test, mirror::Class* super_class)
Andreas Gampebdf7f1c2016-08-30 16:38:47 -0700959 REQUIRES_SHARED(Locks::mutator_lock_) {
David Brazdildee58d62016-04-07 09:54:26 +0000960 return to_test != nullptr && !to_test->IsInterface() && to_test->IsSubClass(super_class);
961}
962
963bool HInstructionBuilder::IsInitialized(Handle<mirror::Class> cls) const {
964 if (cls.Get() == nullptr) {
965 return false;
966 }
967
968 // `CanAssumeClassIsLoaded` will return true if we're JITting, or will
969 // check whether the class is in an image for the AOT compilation.
970 if (cls->IsInitialized() &&
971 compiler_driver_->CanAssumeClassIsLoaded(cls.Get())) {
972 return true;
973 }
974
975 if (IsSubClass(GetOutermostCompilingClass(), cls.Get())) {
976 return true;
977 }
978
979 // TODO: We should walk over the inlined methods, but we don't pass
980 // that information to the builder.
981 if (IsSubClass(GetCompilingClass(), cls.Get())) {
982 return true;
983 }
984
985 return false;
986}
987
988HClinitCheck* HInstructionBuilder::ProcessClinitCheckForInvoke(
989 uint32_t dex_pc,
990 ArtMethod* resolved_method,
991 uint32_t method_idx,
992 HInvokeStaticOrDirect::ClinitCheckRequirement* clinit_check_requirement) {
993 const DexFile& outer_dex_file = *outer_compilation_unit_->GetDexFile();
994 Thread* self = Thread::Current();
Vladimir Marko3cd50df2016-04-13 19:29:26 +0100995 StackHandleScope<2> hs(self);
996 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
997 Handle<mirror::DexCache> outer_dex_cache = outer_compilation_unit_->GetDexCache();
David Brazdildee58d62016-04-07 09:54:26 +0000998 Handle<mirror::Class> outer_class(hs.NewHandle(GetOutermostCompilingClass()));
999 Handle<mirror::Class> resolved_method_class(hs.NewHandle(resolved_method->GetDeclaringClass()));
1000
1001 // The index at which the method's class is stored in the DexCache's type array.
Andreas Gampea5b09a62016-11-17 15:21:22 -08001002 dex::TypeIndex storage_index;
David Brazdildee58d62016-04-07 09:54:26 +00001003 bool is_outer_class = (resolved_method->GetDeclaringClass() == outer_class.Get());
1004 if (is_outer_class) {
1005 storage_index = outer_class->GetDexTypeIndex();
1006 } else if (outer_dex_cache.Get() == dex_cache.Get()) {
1007 // Get `storage_index` from IsClassOfStaticMethodAvailableToReferrer.
1008 compiler_driver_->IsClassOfStaticMethodAvailableToReferrer(outer_dex_cache.Get(),
1009 GetCompilingClass(),
1010 resolved_method,
1011 method_idx,
1012 &storage_index);
1013 }
1014
1015 HClinitCheck* clinit_check = nullptr;
1016
1017 if (IsInitialized(resolved_method_class)) {
1018 *clinit_check_requirement = HInvokeStaticOrDirect::ClinitCheckRequirement::kNone;
Andreas Gampea5b09a62016-11-17 15:21:22 -08001019 } else if (storage_index.IsValid()) {
David Brazdildee58d62016-04-07 09:54:26 +00001020 *clinit_check_requirement = HInvokeStaticOrDirect::ClinitCheckRequirement::kExplicit;
1021 HLoadClass* load_class = new (arena_) HLoadClass(
1022 graph_->GetCurrentMethod(),
1023 storage_index,
1024 outer_dex_file,
1025 is_outer_class,
1026 dex_pc,
Nicolas Geoffray56876342016-12-16 16:09:08 +00001027 /*needs_access_check*/ false);
David Brazdildee58d62016-04-07 09:54:26 +00001028 AppendInstruction(load_class);
1029 clinit_check = new (arena_) HClinitCheck(load_class, dex_pc);
1030 AppendInstruction(clinit_check);
1031 }
1032 return clinit_check;
1033}
1034
1035bool HInstructionBuilder::SetupInvokeArguments(HInvoke* invoke,
1036 uint32_t number_of_vreg_arguments,
1037 uint32_t* args,
1038 uint32_t register_index,
1039 bool is_range,
1040 const char* descriptor,
1041 size_t start_index,
1042 size_t* argument_index) {
1043 uint32_t descriptor_index = 1; // Skip the return type.
1044
1045 for (size_t i = start_index;
1046 // Make sure we don't go over the expected arguments or over the number of
1047 // dex registers given. If the instruction was seen as dead by the verifier,
1048 // it hasn't been properly checked.
1049 (i < number_of_vreg_arguments) && (*argument_index < invoke->GetNumberOfArguments());
1050 i++, (*argument_index)++) {
1051 Primitive::Type type = Primitive::GetType(descriptor[descriptor_index++]);
1052 bool is_wide = (type == Primitive::kPrimLong) || (type == Primitive::kPrimDouble);
1053 if (!is_range
1054 && is_wide
1055 && ((i + 1 == number_of_vreg_arguments) || (args[i] + 1 != args[i + 1]))) {
1056 // Longs and doubles should be in pairs, that is, sequential registers. The verifier should
1057 // reject any class where this is violated. However, the verifier only does these checks
1058 // on non trivially dead instructions, so we just bailout the compilation.
1059 VLOG(compiler) << "Did not compile "
David Sehr709b0702016-10-13 09:12:37 -07001060 << dex_file_->PrettyMethod(dex_compilation_unit_->GetDexMethodIndex())
David Brazdildee58d62016-04-07 09:54:26 +00001061 << " because of non-sequential dex register pair in wide argument";
1062 MaybeRecordStat(MethodCompilationStat::kNotCompiledMalformedOpcode);
1063 return false;
1064 }
1065 HInstruction* arg = LoadLocal(is_range ? register_index + i : args[i], type);
1066 invoke->SetArgumentAt(*argument_index, arg);
1067 if (is_wide) {
1068 i++;
1069 }
1070 }
1071
1072 if (*argument_index != invoke->GetNumberOfArguments()) {
1073 VLOG(compiler) << "Did not compile "
David Sehr709b0702016-10-13 09:12:37 -07001074 << dex_file_->PrettyMethod(dex_compilation_unit_->GetDexMethodIndex())
David Brazdildee58d62016-04-07 09:54:26 +00001075 << " because of wrong number of arguments in invoke instruction";
1076 MaybeRecordStat(MethodCompilationStat::kNotCompiledMalformedOpcode);
1077 return false;
1078 }
1079
1080 if (invoke->IsInvokeStaticOrDirect() &&
1081 HInvokeStaticOrDirect::NeedsCurrentMethodInput(
1082 invoke->AsInvokeStaticOrDirect()->GetMethodLoadKind())) {
1083 invoke->SetArgumentAt(*argument_index, graph_->GetCurrentMethod());
1084 (*argument_index)++;
1085 }
1086
1087 return true;
1088}
1089
1090bool HInstructionBuilder::HandleInvoke(HInvoke* invoke,
1091 uint32_t number_of_vreg_arguments,
1092 uint32_t* args,
1093 uint32_t register_index,
1094 bool is_range,
1095 const char* descriptor,
Aart Bik296fbb42016-06-07 13:49:12 -07001096 HClinitCheck* clinit_check,
1097 bool is_unresolved) {
David Brazdildee58d62016-04-07 09:54:26 +00001098 DCHECK(!invoke->IsInvokeStaticOrDirect() || !invoke->AsInvokeStaticOrDirect()->IsStringInit());
1099
1100 size_t start_index = 0;
1101 size_t argument_index = 0;
Nicolas Geoffray5e4e11e2016-09-22 13:17:41 +01001102 if (invoke->GetInvokeType() != InvokeType::kStatic) { // Instance call.
Aart Bik296fbb42016-06-07 13:49:12 -07001103 uint32_t obj_reg = is_range ? register_index : args[0];
1104 HInstruction* arg = is_unresolved
1105 ? LoadLocal(obj_reg, Primitive::kPrimNot)
1106 : LoadNullCheckedLocal(obj_reg, invoke->GetDexPc());
David Brazdilc120bbe2016-04-22 16:57:00 +01001107 invoke->SetArgumentAt(0, arg);
David Brazdildee58d62016-04-07 09:54:26 +00001108 start_index = 1;
1109 argument_index = 1;
1110 }
1111
1112 if (!SetupInvokeArguments(invoke,
1113 number_of_vreg_arguments,
1114 args,
1115 register_index,
1116 is_range,
1117 descriptor,
1118 start_index,
1119 &argument_index)) {
1120 return false;
1121 }
1122
1123 if (clinit_check != nullptr) {
1124 // Add the class initialization check as last input of `invoke`.
1125 DCHECK(invoke->IsInvokeStaticOrDirect());
1126 DCHECK(invoke->AsInvokeStaticOrDirect()->GetClinitCheckRequirement()
1127 == HInvokeStaticOrDirect::ClinitCheckRequirement::kExplicit);
1128 invoke->SetArgumentAt(argument_index, clinit_check);
1129 argument_index++;
1130 }
1131
1132 AppendInstruction(invoke);
1133 latest_result_ = invoke;
1134
1135 return true;
1136}
1137
1138bool HInstructionBuilder::HandleStringInit(HInvoke* invoke,
1139 uint32_t number_of_vreg_arguments,
1140 uint32_t* args,
1141 uint32_t register_index,
1142 bool is_range,
1143 const char* descriptor) {
1144 DCHECK(invoke->IsInvokeStaticOrDirect());
1145 DCHECK(invoke->AsInvokeStaticOrDirect()->IsStringInit());
1146
1147 size_t start_index = 1;
1148 size_t argument_index = 0;
1149 if (!SetupInvokeArguments(invoke,
1150 number_of_vreg_arguments,
1151 args,
1152 register_index,
1153 is_range,
1154 descriptor,
1155 start_index,
1156 &argument_index)) {
1157 return false;
1158 }
1159
1160 AppendInstruction(invoke);
1161
1162 // This is a StringFactory call, not an actual String constructor. Its result
1163 // replaces the empty String pre-allocated by NewInstance.
1164 uint32_t orig_this_reg = is_range ? register_index : args[0];
1165 HInstruction* arg_this = LoadLocal(orig_this_reg, Primitive::kPrimNot);
1166
1167 // Replacing the NewInstance might render it redundant. Keep a list of these
1168 // to be visited once it is clear whether it is has remaining uses.
1169 if (arg_this->IsNewInstance()) {
1170 ssa_builder_->AddUninitializedString(arg_this->AsNewInstance());
1171 } else {
1172 DCHECK(arg_this->IsPhi());
1173 // NewInstance is not the direct input of the StringFactory call. It might
1174 // be redundant but optimizing this case is not worth the effort.
1175 }
1176
1177 // Walk over all vregs and replace any occurrence of `arg_this` with `invoke`.
1178 for (size_t vreg = 0, e = current_locals_->size(); vreg < e; ++vreg) {
1179 if ((*current_locals_)[vreg] == arg_this) {
1180 (*current_locals_)[vreg] = invoke;
1181 }
1182 }
1183
1184 return true;
1185}
1186
1187static Primitive::Type GetFieldAccessType(const DexFile& dex_file, uint16_t field_index) {
1188 const DexFile::FieldId& field_id = dex_file.GetFieldId(field_index);
1189 const char* type = dex_file.GetFieldTypeDescriptor(field_id);
1190 return Primitive::GetType(type[0]);
1191}
1192
1193bool HInstructionBuilder::BuildInstanceFieldAccess(const Instruction& instruction,
1194 uint32_t dex_pc,
1195 bool is_put) {
1196 uint32_t source_or_dest_reg = instruction.VRegA_22c();
1197 uint32_t obj_reg = instruction.VRegB_22c();
1198 uint16_t field_index;
1199 if (instruction.IsQuickened()) {
1200 if (!CanDecodeQuickenedInfo()) {
1201 return false;
1202 }
1203 field_index = LookupQuickenedInfo(dex_pc);
1204 } else {
1205 field_index = instruction.VRegC_22c();
1206 }
1207
1208 ScopedObjectAccess soa(Thread::Current());
1209 ArtField* resolved_field =
1210 compiler_driver_->ComputeInstanceFieldInfo(field_index, dex_compilation_unit_, is_put, soa);
1211
1212
Aart Bik14154132016-06-02 17:53:58 -07001213 // Generate an explicit null check on the reference, unless the field access
1214 // is unresolved. In that case, we rely on the runtime to perform various
1215 // checks first, followed by a null check.
1216 HInstruction* object = (resolved_field == nullptr)
1217 ? LoadLocal(obj_reg, Primitive::kPrimNot)
1218 : LoadNullCheckedLocal(obj_reg, dex_pc);
David Brazdildee58d62016-04-07 09:54:26 +00001219
1220 Primitive::Type field_type = (resolved_field == nullptr)
1221 ? GetFieldAccessType(*dex_file_, field_index)
1222 : resolved_field->GetTypeAsPrimitiveType();
1223 if (is_put) {
1224 HInstruction* value = LoadLocal(source_or_dest_reg, field_type);
1225 HInstruction* field_set = nullptr;
1226 if (resolved_field == nullptr) {
1227 MaybeRecordStat(MethodCompilationStat::kUnresolvedField);
David Brazdilc120bbe2016-04-22 16:57:00 +01001228 field_set = new (arena_) HUnresolvedInstanceFieldSet(object,
David Brazdildee58d62016-04-07 09:54:26 +00001229 value,
1230 field_type,
1231 field_index,
1232 dex_pc);
1233 } else {
1234 uint16_t class_def_index = resolved_field->GetDeclaringClass()->GetDexClassDefIndex();
David Brazdilc120bbe2016-04-22 16:57:00 +01001235 field_set = new (arena_) HInstanceFieldSet(object,
David Brazdildee58d62016-04-07 09:54:26 +00001236 value,
Nicolas Geoffrayc52b26d2016-12-19 09:18:07 +00001237 resolved_field,
David Brazdildee58d62016-04-07 09:54:26 +00001238 field_type,
1239 resolved_field->GetOffset(),
1240 resolved_field->IsVolatile(),
1241 field_index,
1242 class_def_index,
1243 *dex_file_,
David Brazdildee58d62016-04-07 09:54:26 +00001244 dex_pc);
1245 }
1246 AppendInstruction(field_set);
1247 } else {
1248 HInstruction* field_get = nullptr;
1249 if (resolved_field == nullptr) {
1250 MaybeRecordStat(MethodCompilationStat::kUnresolvedField);
David Brazdilc120bbe2016-04-22 16:57:00 +01001251 field_get = new (arena_) HUnresolvedInstanceFieldGet(object,
David Brazdildee58d62016-04-07 09:54:26 +00001252 field_type,
1253 field_index,
1254 dex_pc);
1255 } else {
1256 uint16_t class_def_index = resolved_field->GetDeclaringClass()->GetDexClassDefIndex();
David Brazdilc120bbe2016-04-22 16:57:00 +01001257 field_get = new (arena_) HInstanceFieldGet(object,
Nicolas Geoffrayc52b26d2016-12-19 09:18:07 +00001258 resolved_field,
David Brazdildee58d62016-04-07 09:54:26 +00001259 field_type,
1260 resolved_field->GetOffset(),
1261 resolved_field->IsVolatile(),
1262 field_index,
1263 class_def_index,
1264 *dex_file_,
David Brazdildee58d62016-04-07 09:54:26 +00001265 dex_pc);
1266 }
1267 AppendInstruction(field_get);
1268 UpdateLocal(source_or_dest_reg, field_get);
1269 }
1270
1271 return true;
1272}
1273
1274static mirror::Class* GetClassFrom(CompilerDriver* driver,
1275 const DexCompilationUnit& compilation_unit) {
1276 ScopedObjectAccess soa(Thread::Current());
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001277 StackHandleScope<1> hs(soa.Self());
David Brazdildee58d62016-04-07 09:54:26 +00001278 Handle<mirror::ClassLoader> class_loader(hs.NewHandle(
Mathieu Chartier0795f232016-09-27 18:43:30 -07001279 soa.Decode<mirror::ClassLoader>(compilation_unit.GetClassLoader())));
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001280 Handle<mirror::DexCache> dex_cache = compilation_unit.GetDexCache();
David Brazdildee58d62016-04-07 09:54:26 +00001281
1282 return driver->ResolveCompilingMethodsClass(soa, dex_cache, class_loader, &compilation_unit);
1283}
1284
1285mirror::Class* HInstructionBuilder::GetOutermostCompilingClass() const {
1286 return GetClassFrom(compiler_driver_, *outer_compilation_unit_);
1287}
1288
1289mirror::Class* HInstructionBuilder::GetCompilingClass() const {
1290 return GetClassFrom(compiler_driver_, *dex_compilation_unit_);
1291}
1292
Andreas Gampea5b09a62016-11-17 15:21:22 -08001293bool HInstructionBuilder::IsOutermostCompilingClass(dex::TypeIndex type_index) const {
David Brazdildee58d62016-04-07 09:54:26 +00001294 ScopedObjectAccess soa(Thread::Current());
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001295 StackHandleScope<3> hs(soa.Self());
1296 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
David Brazdildee58d62016-04-07 09:54:26 +00001297 Handle<mirror::ClassLoader> class_loader(hs.NewHandle(
Mathieu Chartier0795f232016-09-27 18:43:30 -07001298 soa.Decode<mirror::ClassLoader>(dex_compilation_unit_->GetClassLoader())));
David Brazdildee58d62016-04-07 09:54:26 +00001299 Handle<mirror::Class> cls(hs.NewHandle(compiler_driver_->ResolveClass(
1300 soa, dex_cache, class_loader, type_index, dex_compilation_unit_)));
1301 Handle<mirror::Class> outer_class(hs.NewHandle(GetOutermostCompilingClass()));
1302
1303 // GetOutermostCompilingClass returns null when the class is unresolved
1304 // (e.g. if it derives from an unresolved class). This is bogus knowing that
1305 // we are compiling it.
1306 // When this happens we cannot establish a direct relation between the current
1307 // class and the outer class, so we return false.
1308 // (Note that this is only used for optimizing invokes and field accesses)
1309 return (cls.Get() != nullptr) && (outer_class.Get() == cls.Get());
1310}
1311
1312void HInstructionBuilder::BuildUnresolvedStaticFieldAccess(const Instruction& instruction,
Nicolas Geoffrayc52b26d2016-12-19 09:18:07 +00001313 uint32_t dex_pc,
1314 bool is_put,
1315 Primitive::Type field_type) {
David Brazdildee58d62016-04-07 09:54:26 +00001316 uint32_t source_or_dest_reg = instruction.VRegA_21c();
1317 uint16_t field_index = instruction.VRegB_21c();
1318
1319 if (is_put) {
1320 HInstruction* value = LoadLocal(source_or_dest_reg, field_type);
1321 AppendInstruction(
1322 new (arena_) HUnresolvedStaticFieldSet(value, field_type, field_index, dex_pc));
1323 } else {
1324 AppendInstruction(new (arena_) HUnresolvedStaticFieldGet(field_type, field_index, dex_pc));
1325 UpdateLocal(source_or_dest_reg, current_block_->GetLastInstruction());
1326 }
1327}
1328
1329bool HInstructionBuilder::BuildStaticFieldAccess(const Instruction& instruction,
1330 uint32_t dex_pc,
1331 bool is_put) {
1332 uint32_t source_or_dest_reg = instruction.VRegA_21c();
1333 uint16_t field_index = instruction.VRegB_21c();
1334
1335 ScopedObjectAccess soa(Thread::Current());
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001336 StackHandleScope<3> hs(soa.Self());
1337 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
David Brazdildee58d62016-04-07 09:54:26 +00001338 Handle<mirror::ClassLoader> class_loader(hs.NewHandle(
Mathieu Chartier0795f232016-09-27 18:43:30 -07001339 soa.Decode<mirror::ClassLoader>(dex_compilation_unit_->GetClassLoader())));
David Brazdildee58d62016-04-07 09:54:26 +00001340 ArtField* resolved_field = compiler_driver_->ResolveField(
1341 soa, dex_cache, class_loader, dex_compilation_unit_, field_index, true);
1342
1343 if (resolved_field == nullptr) {
1344 MaybeRecordStat(MethodCompilationStat::kUnresolvedField);
1345 Primitive::Type field_type = GetFieldAccessType(*dex_file_, field_index);
1346 BuildUnresolvedStaticFieldAccess(instruction, dex_pc, is_put, field_type);
1347 return true;
1348 }
1349
1350 Primitive::Type field_type = resolved_field->GetTypeAsPrimitiveType();
1351 const DexFile& outer_dex_file = *outer_compilation_unit_->GetDexFile();
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001352 Handle<mirror::DexCache> outer_dex_cache = outer_compilation_unit_->GetDexCache();
David Brazdildee58d62016-04-07 09:54:26 +00001353 Handle<mirror::Class> outer_class(hs.NewHandle(GetOutermostCompilingClass()));
1354
1355 // The index at which the field's class is stored in the DexCache's type array.
Andreas Gampea5b09a62016-11-17 15:21:22 -08001356 dex::TypeIndex storage_index;
David Brazdildee58d62016-04-07 09:54:26 +00001357 bool is_outer_class = (outer_class.Get() == resolved_field->GetDeclaringClass());
1358 if (is_outer_class) {
1359 storage_index = outer_class->GetDexTypeIndex();
1360 } else if (outer_dex_cache.Get() != dex_cache.Get()) {
1361 // The compiler driver cannot currently understand multiple dex caches involved. Just bailout.
1362 return false;
1363 } else {
1364 // TODO: This is rather expensive. Perf it and cache the results if needed.
1365 std::pair<bool, bool> pair = compiler_driver_->IsFastStaticField(
1366 outer_dex_cache.Get(),
1367 GetCompilingClass(),
1368 resolved_field,
1369 field_index,
1370 &storage_index);
1371 bool can_easily_access = is_put ? pair.second : pair.first;
1372 if (!can_easily_access) {
1373 MaybeRecordStat(MethodCompilationStat::kUnresolvedFieldNotAFastAccess);
1374 BuildUnresolvedStaticFieldAccess(instruction, dex_pc, is_put, field_type);
1375 return true;
1376 }
1377 }
1378
David Brazdildee58d62016-04-07 09:54:26 +00001379 HLoadClass* constant = new (arena_) HLoadClass(graph_->GetCurrentMethod(),
1380 storage_index,
1381 outer_dex_file,
1382 is_outer_class,
1383 dex_pc,
Nicolas Geoffray56876342016-12-16 16:09:08 +00001384 /*needs_access_check*/ false);
David Brazdildee58d62016-04-07 09:54:26 +00001385 AppendInstruction(constant);
1386
1387 HInstruction* cls = constant;
1388
1389 Handle<mirror::Class> klass(hs.NewHandle(resolved_field->GetDeclaringClass()));
1390 if (!IsInitialized(klass)) {
1391 cls = new (arena_) HClinitCheck(constant, dex_pc);
1392 AppendInstruction(cls);
1393 }
1394
1395 uint16_t class_def_index = klass->GetDexClassDefIndex();
1396 if (is_put) {
1397 // We need to keep the class alive before loading the value.
1398 HInstruction* value = LoadLocal(source_or_dest_reg, field_type);
1399 DCHECK_EQ(HPhi::ToPhiType(value->GetType()), HPhi::ToPhiType(field_type));
1400 AppendInstruction(new (arena_) HStaticFieldSet(cls,
1401 value,
Nicolas Geoffrayc52b26d2016-12-19 09:18:07 +00001402 resolved_field,
David Brazdildee58d62016-04-07 09:54:26 +00001403 field_type,
1404 resolved_field->GetOffset(),
1405 resolved_field->IsVolatile(),
1406 field_index,
1407 class_def_index,
1408 *dex_file_,
David Brazdildee58d62016-04-07 09:54:26 +00001409 dex_pc));
1410 } else {
1411 AppendInstruction(new (arena_) HStaticFieldGet(cls,
Nicolas Geoffrayc52b26d2016-12-19 09:18:07 +00001412 resolved_field,
David Brazdildee58d62016-04-07 09:54:26 +00001413 field_type,
1414 resolved_field->GetOffset(),
1415 resolved_field->IsVolatile(),
1416 field_index,
1417 class_def_index,
1418 *dex_file_,
David Brazdildee58d62016-04-07 09:54:26 +00001419 dex_pc));
1420 UpdateLocal(source_or_dest_reg, current_block_->GetLastInstruction());
1421 }
1422 return true;
1423}
1424
1425void HInstructionBuilder::BuildCheckedDivRem(uint16_t out_vreg,
1426 uint16_t first_vreg,
1427 int64_t second_vreg_or_constant,
1428 uint32_t dex_pc,
1429 Primitive::Type type,
1430 bool second_is_constant,
1431 bool isDiv) {
1432 DCHECK(type == Primitive::kPrimInt || type == Primitive::kPrimLong);
1433
1434 HInstruction* first = LoadLocal(first_vreg, type);
1435 HInstruction* second = nullptr;
1436 if (second_is_constant) {
1437 if (type == Primitive::kPrimInt) {
1438 second = graph_->GetIntConstant(second_vreg_or_constant, dex_pc);
1439 } else {
1440 second = graph_->GetLongConstant(second_vreg_or_constant, dex_pc);
1441 }
1442 } else {
1443 second = LoadLocal(second_vreg_or_constant, type);
1444 }
1445
1446 if (!second_is_constant
1447 || (type == Primitive::kPrimInt && second->AsIntConstant()->GetValue() == 0)
1448 || (type == Primitive::kPrimLong && second->AsLongConstant()->GetValue() == 0)) {
1449 second = new (arena_) HDivZeroCheck(second, dex_pc);
1450 AppendInstruction(second);
1451 }
1452
1453 if (isDiv) {
1454 AppendInstruction(new (arena_) HDiv(type, first, second, dex_pc));
1455 } else {
1456 AppendInstruction(new (arena_) HRem(type, first, second, dex_pc));
1457 }
1458 UpdateLocal(out_vreg, current_block_->GetLastInstruction());
1459}
1460
1461void HInstructionBuilder::BuildArrayAccess(const Instruction& instruction,
1462 uint32_t dex_pc,
1463 bool is_put,
1464 Primitive::Type anticipated_type) {
1465 uint8_t source_or_dest_reg = instruction.VRegA_23x();
1466 uint8_t array_reg = instruction.VRegB_23x();
1467 uint8_t index_reg = instruction.VRegC_23x();
1468
David Brazdilc120bbe2016-04-22 16:57:00 +01001469 HInstruction* object = LoadNullCheckedLocal(array_reg, dex_pc);
David Brazdildee58d62016-04-07 09:54:26 +00001470 HInstruction* length = new (arena_) HArrayLength(object, dex_pc);
1471 AppendInstruction(length);
1472 HInstruction* index = LoadLocal(index_reg, Primitive::kPrimInt);
1473 index = new (arena_) HBoundsCheck(index, length, dex_pc);
1474 AppendInstruction(index);
1475 if (is_put) {
1476 HInstruction* value = LoadLocal(source_or_dest_reg, anticipated_type);
1477 // TODO: Insert a type check node if the type is Object.
1478 HArraySet* aset = new (arena_) HArraySet(object, index, value, anticipated_type, dex_pc);
1479 ssa_builder_->MaybeAddAmbiguousArraySet(aset);
1480 AppendInstruction(aset);
1481 } else {
1482 HArrayGet* aget = new (arena_) HArrayGet(object, index, anticipated_type, dex_pc);
1483 ssa_builder_->MaybeAddAmbiguousArrayGet(aget);
1484 AppendInstruction(aget);
1485 UpdateLocal(source_or_dest_reg, current_block_->GetLastInstruction());
1486 }
1487 graph_->SetHasBoundsChecks(true);
1488}
1489
1490void HInstructionBuilder::BuildFilledNewArray(uint32_t dex_pc,
Andreas Gampea5b09a62016-11-17 15:21:22 -08001491 dex::TypeIndex type_index,
David Brazdildee58d62016-04-07 09:54:26 +00001492 uint32_t number_of_vreg_arguments,
1493 bool is_range,
1494 uint32_t* args,
1495 uint32_t register_index) {
1496 HInstruction* length = graph_->GetIntConstant(number_of_vreg_arguments, dex_pc);
1497 bool finalizable;
1498 QuickEntrypointEnum entrypoint = NeedsAccessCheck(type_index, &finalizable)
1499 ? kQuickAllocArrayWithAccessCheck
1500 : kQuickAllocArray;
1501 HInstruction* object = new (arena_) HNewArray(length,
1502 graph_->GetCurrentMethod(),
1503 dex_pc,
1504 type_index,
1505 *dex_compilation_unit_->GetDexFile(),
1506 entrypoint);
1507 AppendInstruction(object);
1508
1509 const char* descriptor = dex_file_->StringByTypeIdx(type_index);
1510 DCHECK_EQ(descriptor[0], '[') << descriptor;
1511 char primitive = descriptor[1];
1512 DCHECK(primitive == 'I'
1513 || primitive == 'L'
1514 || primitive == '[') << descriptor;
1515 bool is_reference_array = (primitive == 'L') || (primitive == '[');
1516 Primitive::Type type = is_reference_array ? Primitive::kPrimNot : Primitive::kPrimInt;
1517
1518 for (size_t i = 0; i < number_of_vreg_arguments; ++i) {
1519 HInstruction* value = LoadLocal(is_range ? register_index + i : args[i], type);
1520 HInstruction* index = graph_->GetIntConstant(i, dex_pc);
1521 HArraySet* aset = new (arena_) HArraySet(object, index, value, type, dex_pc);
1522 ssa_builder_->MaybeAddAmbiguousArraySet(aset);
1523 AppendInstruction(aset);
1524 }
1525 latest_result_ = object;
1526}
1527
1528template <typename T>
1529void HInstructionBuilder::BuildFillArrayData(HInstruction* object,
1530 const T* data,
1531 uint32_t element_count,
1532 Primitive::Type anticipated_type,
1533 uint32_t dex_pc) {
1534 for (uint32_t i = 0; i < element_count; ++i) {
1535 HInstruction* index = graph_->GetIntConstant(i, dex_pc);
1536 HInstruction* value = graph_->GetIntConstant(data[i], dex_pc);
1537 HArraySet* aset = new (arena_) HArraySet(object, index, value, anticipated_type, dex_pc);
1538 ssa_builder_->MaybeAddAmbiguousArraySet(aset);
1539 AppendInstruction(aset);
1540 }
1541}
1542
1543void HInstructionBuilder::BuildFillArrayData(const Instruction& instruction, uint32_t dex_pc) {
David Brazdilc120bbe2016-04-22 16:57:00 +01001544 HInstruction* array = LoadNullCheckedLocal(instruction.VRegA_31t(), dex_pc);
David Brazdildee58d62016-04-07 09:54:26 +00001545
1546 int32_t payload_offset = instruction.VRegB_31t() + dex_pc;
1547 const Instruction::ArrayDataPayload* payload =
1548 reinterpret_cast<const Instruction::ArrayDataPayload*>(code_item_.insns_ + payload_offset);
1549 const uint8_t* data = payload->data;
1550 uint32_t element_count = payload->element_count;
1551
Vladimir Markoc69fba22016-09-06 16:49:15 +01001552 if (element_count == 0u) {
1553 // For empty payload we emit only the null check above.
1554 return;
1555 }
1556
1557 HInstruction* length = new (arena_) HArrayLength(array, dex_pc);
1558 AppendInstruction(length);
1559
David Brazdildee58d62016-04-07 09:54:26 +00001560 // Implementation of this DEX instruction seems to be that the bounds check is
1561 // done before doing any stores.
1562 HInstruction* last_index = graph_->GetIntConstant(payload->element_count - 1, dex_pc);
1563 AppendInstruction(new (arena_) HBoundsCheck(last_index, length, dex_pc));
1564
1565 switch (payload->element_width) {
1566 case 1:
David Brazdilc120bbe2016-04-22 16:57:00 +01001567 BuildFillArrayData(array,
David Brazdildee58d62016-04-07 09:54:26 +00001568 reinterpret_cast<const int8_t*>(data),
1569 element_count,
1570 Primitive::kPrimByte,
1571 dex_pc);
1572 break;
1573 case 2:
David Brazdilc120bbe2016-04-22 16:57:00 +01001574 BuildFillArrayData(array,
David Brazdildee58d62016-04-07 09:54:26 +00001575 reinterpret_cast<const int16_t*>(data),
1576 element_count,
1577 Primitive::kPrimShort,
1578 dex_pc);
1579 break;
1580 case 4:
David Brazdilc120bbe2016-04-22 16:57:00 +01001581 BuildFillArrayData(array,
David Brazdildee58d62016-04-07 09:54:26 +00001582 reinterpret_cast<const int32_t*>(data),
1583 element_count,
1584 Primitive::kPrimInt,
1585 dex_pc);
1586 break;
1587 case 8:
David Brazdilc120bbe2016-04-22 16:57:00 +01001588 BuildFillWideArrayData(array,
David Brazdildee58d62016-04-07 09:54:26 +00001589 reinterpret_cast<const int64_t*>(data),
1590 element_count,
1591 dex_pc);
1592 break;
1593 default:
1594 LOG(FATAL) << "Unknown element width for " << payload->element_width;
1595 }
1596 graph_->SetHasBoundsChecks(true);
1597}
1598
1599void HInstructionBuilder::BuildFillWideArrayData(HInstruction* object,
1600 const int64_t* data,
1601 uint32_t element_count,
1602 uint32_t dex_pc) {
1603 for (uint32_t i = 0; i < element_count; ++i) {
1604 HInstruction* index = graph_->GetIntConstant(i, dex_pc);
1605 HInstruction* value = graph_->GetLongConstant(data[i], dex_pc);
1606 HArraySet* aset = new (arena_) HArraySet(object, index, value, Primitive::kPrimLong, dex_pc);
1607 ssa_builder_->MaybeAddAmbiguousArraySet(aset);
1608 AppendInstruction(aset);
1609 }
1610}
1611
1612static TypeCheckKind ComputeTypeCheckKind(Handle<mirror::Class> cls)
Andreas Gampebdf7f1c2016-08-30 16:38:47 -07001613 REQUIRES_SHARED(Locks::mutator_lock_) {
David Brazdildee58d62016-04-07 09:54:26 +00001614 if (cls.Get() == nullptr) {
1615 return TypeCheckKind::kUnresolvedCheck;
1616 } else if (cls->IsInterface()) {
1617 return TypeCheckKind::kInterfaceCheck;
1618 } else if (cls->IsArrayClass()) {
1619 if (cls->GetComponentType()->IsObjectClass()) {
1620 return TypeCheckKind::kArrayObjectCheck;
1621 } else if (cls->CannotBeAssignedFromOtherTypes()) {
1622 return TypeCheckKind::kExactCheck;
1623 } else {
1624 return TypeCheckKind::kArrayCheck;
1625 }
1626 } else if (cls->IsFinal()) {
1627 return TypeCheckKind::kExactCheck;
1628 } else if (cls->IsAbstract()) {
1629 return TypeCheckKind::kAbstractClassCheck;
1630 } else {
1631 return TypeCheckKind::kClassHierarchyCheck;
1632 }
1633}
1634
1635void HInstructionBuilder::BuildTypeCheck(const Instruction& instruction,
1636 uint8_t destination,
1637 uint8_t reference,
Andreas Gampea5b09a62016-11-17 15:21:22 -08001638 dex::TypeIndex type_index,
David Brazdildee58d62016-04-07 09:54:26 +00001639 uint32_t dex_pc) {
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001640 ScopedObjectAccess soa(Thread::Current());
1641 StackHandleScope<1> hs(soa.Self());
1642 const DexFile& dex_file = *dex_compilation_unit_->GetDexFile();
1643 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
1644 Handle<mirror::Class> resolved_class(hs.NewHandle(dex_cache->GetResolvedType(type_index)));
1645
David Brazdildee58d62016-04-07 09:54:26 +00001646 bool can_access = compiler_driver_->CanAccessTypeWithoutChecks(
1647 dex_compilation_unit_->GetDexMethodIndex(),
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001648 dex_cache,
1649 type_index);
David Brazdildee58d62016-04-07 09:54:26 +00001650
1651 HInstruction* object = LoadLocal(reference, Primitive::kPrimNot);
1652 HLoadClass* cls = new (arena_) HLoadClass(
1653 graph_->GetCurrentMethod(),
1654 type_index,
1655 dex_file,
1656 IsOutermostCompilingClass(type_index),
1657 dex_pc,
Nicolas Geoffray56876342016-12-16 16:09:08 +00001658 !can_access);
David Brazdildee58d62016-04-07 09:54:26 +00001659 AppendInstruction(cls);
1660
1661 TypeCheckKind check_kind = ComputeTypeCheckKind(resolved_class);
1662 if (instruction.Opcode() == Instruction::INSTANCE_OF) {
1663 AppendInstruction(new (arena_) HInstanceOf(object, cls, check_kind, dex_pc));
1664 UpdateLocal(destination, current_block_->GetLastInstruction());
1665 } else {
1666 DCHECK_EQ(instruction.Opcode(), Instruction::CHECK_CAST);
1667 // We emit a CheckCast followed by a BoundType. CheckCast is a statement
1668 // which may throw. If it succeeds BoundType sets the new type of `object`
1669 // for all subsequent uses.
1670 AppendInstruction(new (arena_) HCheckCast(object, cls, check_kind, dex_pc));
1671 AppendInstruction(new (arena_) HBoundType(object, dex_pc));
1672 UpdateLocal(reference, current_block_->GetLastInstruction());
1673 }
1674}
1675
Andreas Gampea5b09a62016-11-17 15:21:22 -08001676bool HInstructionBuilder::NeedsAccessCheck(dex::TypeIndex type_index,
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001677 Handle<mirror::DexCache> dex_cache,
1678 bool* finalizable) const {
David Brazdildee58d62016-04-07 09:54:26 +00001679 return !compiler_driver_->CanAccessInstantiableTypeWithoutChecks(
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001680 dex_compilation_unit_->GetDexMethodIndex(), dex_cache, type_index, finalizable);
1681}
1682
Andreas Gampea5b09a62016-11-17 15:21:22 -08001683bool HInstructionBuilder::NeedsAccessCheck(dex::TypeIndex type_index, bool* finalizable) const {
Vladimir Marko3cd50df2016-04-13 19:29:26 +01001684 ScopedObjectAccess soa(Thread::Current());
1685 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
1686 return NeedsAccessCheck(type_index, dex_cache, finalizable);
David Brazdildee58d62016-04-07 09:54:26 +00001687}
1688
1689bool HInstructionBuilder::CanDecodeQuickenedInfo() const {
1690 return interpreter_metadata_ != nullptr;
1691}
1692
1693uint16_t HInstructionBuilder::LookupQuickenedInfo(uint32_t dex_pc) {
1694 DCHECK(interpreter_metadata_ != nullptr);
1695
1696 // First check if the info has already been decoded from `interpreter_metadata_`.
1697 auto it = skipped_interpreter_metadata_.find(dex_pc);
1698 if (it != skipped_interpreter_metadata_.end()) {
1699 // Remove the entry from the map and return the parsed info.
1700 uint16_t value_in_map = it->second;
1701 skipped_interpreter_metadata_.erase(it);
1702 return value_in_map;
1703 }
1704
1705 // Otherwise start parsing `interpreter_metadata_` until the slot for `dex_pc`
1706 // is found. Store skipped values in the `skipped_interpreter_metadata_` map.
1707 while (true) {
1708 uint32_t dex_pc_in_map = DecodeUnsignedLeb128(&interpreter_metadata_);
1709 uint16_t value_in_map = DecodeUnsignedLeb128(&interpreter_metadata_);
1710 DCHECK_LE(dex_pc_in_map, dex_pc);
1711
1712 if (dex_pc_in_map == dex_pc) {
1713 return value_in_map;
1714 } else {
Nicolas Geoffray01b70e82016-11-17 10:58:36 +00001715 // Overwrite and not Put, as quickened CHECK-CAST has two entries with
1716 // the same dex_pc. This is OK, because the compiler does not care about those
1717 // entries.
1718 skipped_interpreter_metadata_.Overwrite(dex_pc_in_map, value_in_map);
David Brazdildee58d62016-04-07 09:54:26 +00001719 }
1720 }
1721}
1722
1723bool HInstructionBuilder::ProcessDexInstruction(const Instruction& instruction, uint32_t dex_pc) {
1724 switch (instruction.Opcode()) {
1725 case Instruction::CONST_4: {
1726 int32_t register_index = instruction.VRegA();
1727 HIntConstant* constant = graph_->GetIntConstant(instruction.VRegB_11n(), dex_pc);
1728 UpdateLocal(register_index, constant);
1729 break;
1730 }
1731
1732 case Instruction::CONST_16: {
1733 int32_t register_index = instruction.VRegA();
1734 HIntConstant* constant = graph_->GetIntConstant(instruction.VRegB_21s(), dex_pc);
1735 UpdateLocal(register_index, constant);
1736 break;
1737 }
1738
1739 case Instruction::CONST: {
1740 int32_t register_index = instruction.VRegA();
1741 HIntConstant* constant = graph_->GetIntConstant(instruction.VRegB_31i(), dex_pc);
1742 UpdateLocal(register_index, constant);
1743 break;
1744 }
1745
1746 case Instruction::CONST_HIGH16: {
1747 int32_t register_index = instruction.VRegA();
1748 HIntConstant* constant = graph_->GetIntConstant(instruction.VRegB_21h() << 16, dex_pc);
1749 UpdateLocal(register_index, constant);
1750 break;
1751 }
1752
1753 case Instruction::CONST_WIDE_16: {
1754 int32_t register_index = instruction.VRegA();
1755 // Get 16 bits of constant value, sign extended to 64 bits.
1756 int64_t value = instruction.VRegB_21s();
1757 value <<= 48;
1758 value >>= 48;
1759 HLongConstant* constant = graph_->GetLongConstant(value, dex_pc);
1760 UpdateLocal(register_index, constant);
1761 break;
1762 }
1763
1764 case Instruction::CONST_WIDE_32: {
1765 int32_t register_index = instruction.VRegA();
1766 // Get 32 bits of constant value, sign extended to 64 bits.
1767 int64_t value = instruction.VRegB_31i();
1768 value <<= 32;
1769 value >>= 32;
1770 HLongConstant* constant = graph_->GetLongConstant(value, dex_pc);
1771 UpdateLocal(register_index, constant);
1772 break;
1773 }
1774
1775 case Instruction::CONST_WIDE: {
1776 int32_t register_index = instruction.VRegA();
1777 HLongConstant* constant = graph_->GetLongConstant(instruction.VRegB_51l(), dex_pc);
1778 UpdateLocal(register_index, constant);
1779 break;
1780 }
1781
1782 case Instruction::CONST_WIDE_HIGH16: {
1783 int32_t register_index = instruction.VRegA();
1784 int64_t value = static_cast<int64_t>(instruction.VRegB_21h()) << 48;
1785 HLongConstant* constant = graph_->GetLongConstant(value, dex_pc);
1786 UpdateLocal(register_index, constant);
1787 break;
1788 }
1789
1790 // Note that the SSA building will refine the types.
1791 case Instruction::MOVE:
1792 case Instruction::MOVE_FROM16:
1793 case Instruction::MOVE_16: {
1794 HInstruction* value = LoadLocal(instruction.VRegB(), Primitive::kPrimInt);
1795 UpdateLocal(instruction.VRegA(), value);
1796 break;
1797 }
1798
1799 // Note that the SSA building will refine the types.
1800 case Instruction::MOVE_WIDE:
1801 case Instruction::MOVE_WIDE_FROM16:
1802 case Instruction::MOVE_WIDE_16: {
1803 HInstruction* value = LoadLocal(instruction.VRegB(), Primitive::kPrimLong);
1804 UpdateLocal(instruction.VRegA(), value);
1805 break;
1806 }
1807
1808 case Instruction::MOVE_OBJECT:
1809 case Instruction::MOVE_OBJECT_16:
1810 case Instruction::MOVE_OBJECT_FROM16: {
Nicolas Geoffray50a9ed02016-09-23 15:40:41 +01001811 // The verifier has no notion of a null type, so a move-object of constant 0
1812 // will lead to the same constant 0 in the destination register. To mimic
1813 // this behavior, we just pretend we haven't seen a type change (int to reference)
1814 // for the 0 constant and phis. We rely on our type propagation to eventually get the
1815 // types correct.
1816 uint32_t reg_number = instruction.VRegB();
1817 HInstruction* value = (*current_locals_)[reg_number];
1818 if (value->IsIntConstant()) {
1819 DCHECK_EQ(value->AsIntConstant()->GetValue(), 0);
1820 } else if (value->IsPhi()) {
1821 DCHECK(value->GetType() == Primitive::kPrimInt || value->GetType() == Primitive::kPrimNot);
1822 } else {
1823 value = LoadLocal(reg_number, Primitive::kPrimNot);
1824 }
David Brazdildee58d62016-04-07 09:54:26 +00001825 UpdateLocal(instruction.VRegA(), value);
1826 break;
1827 }
1828
1829 case Instruction::RETURN_VOID_NO_BARRIER:
1830 case Instruction::RETURN_VOID: {
1831 BuildReturn(instruction, Primitive::kPrimVoid, dex_pc);
1832 break;
1833 }
1834
1835#define IF_XX(comparison, cond) \
1836 case Instruction::IF_##cond: If_22t<comparison>(instruction, dex_pc); break; \
1837 case Instruction::IF_##cond##Z: If_21t<comparison>(instruction, dex_pc); break
1838
1839 IF_XX(HEqual, EQ);
1840 IF_XX(HNotEqual, NE);
1841 IF_XX(HLessThan, LT);
1842 IF_XX(HLessThanOrEqual, LE);
1843 IF_XX(HGreaterThan, GT);
1844 IF_XX(HGreaterThanOrEqual, GE);
1845
1846 case Instruction::GOTO:
1847 case Instruction::GOTO_16:
1848 case Instruction::GOTO_32: {
1849 AppendInstruction(new (arena_) HGoto(dex_pc));
1850 current_block_ = nullptr;
1851 break;
1852 }
1853
1854 case Instruction::RETURN: {
1855 BuildReturn(instruction, return_type_, dex_pc);
1856 break;
1857 }
1858
1859 case Instruction::RETURN_OBJECT: {
1860 BuildReturn(instruction, return_type_, dex_pc);
1861 break;
1862 }
1863
1864 case Instruction::RETURN_WIDE: {
1865 BuildReturn(instruction, return_type_, dex_pc);
1866 break;
1867 }
1868
1869 case Instruction::INVOKE_DIRECT:
1870 case Instruction::INVOKE_INTERFACE:
1871 case Instruction::INVOKE_STATIC:
1872 case Instruction::INVOKE_SUPER:
1873 case Instruction::INVOKE_VIRTUAL:
1874 case Instruction::INVOKE_VIRTUAL_QUICK: {
1875 uint16_t method_idx;
1876 if (instruction.Opcode() == Instruction::INVOKE_VIRTUAL_QUICK) {
1877 if (!CanDecodeQuickenedInfo()) {
1878 return false;
1879 }
1880 method_idx = LookupQuickenedInfo(dex_pc);
1881 } else {
1882 method_idx = instruction.VRegB_35c();
1883 }
1884 uint32_t number_of_vreg_arguments = instruction.VRegA_35c();
1885 uint32_t args[5];
1886 instruction.GetVarArgs(args);
1887 if (!BuildInvoke(instruction, dex_pc, method_idx,
1888 number_of_vreg_arguments, false, args, -1)) {
1889 return false;
1890 }
1891 break;
1892 }
1893
1894 case Instruction::INVOKE_DIRECT_RANGE:
1895 case Instruction::INVOKE_INTERFACE_RANGE:
1896 case Instruction::INVOKE_STATIC_RANGE:
1897 case Instruction::INVOKE_SUPER_RANGE:
1898 case Instruction::INVOKE_VIRTUAL_RANGE:
1899 case Instruction::INVOKE_VIRTUAL_RANGE_QUICK: {
1900 uint16_t method_idx;
1901 if (instruction.Opcode() == Instruction::INVOKE_VIRTUAL_RANGE_QUICK) {
1902 if (!CanDecodeQuickenedInfo()) {
1903 return false;
1904 }
1905 method_idx = LookupQuickenedInfo(dex_pc);
1906 } else {
1907 method_idx = instruction.VRegB_3rc();
1908 }
1909 uint32_t number_of_vreg_arguments = instruction.VRegA_3rc();
1910 uint32_t register_index = instruction.VRegC();
1911 if (!BuildInvoke(instruction, dex_pc, method_idx,
1912 number_of_vreg_arguments, true, nullptr, register_index)) {
1913 return false;
1914 }
1915 break;
1916 }
1917
1918 case Instruction::NEG_INT: {
1919 Unop_12x<HNeg>(instruction, Primitive::kPrimInt, dex_pc);
1920 break;
1921 }
1922
1923 case Instruction::NEG_LONG: {
1924 Unop_12x<HNeg>(instruction, Primitive::kPrimLong, dex_pc);
1925 break;
1926 }
1927
1928 case Instruction::NEG_FLOAT: {
1929 Unop_12x<HNeg>(instruction, Primitive::kPrimFloat, dex_pc);
1930 break;
1931 }
1932
1933 case Instruction::NEG_DOUBLE: {
1934 Unop_12x<HNeg>(instruction, Primitive::kPrimDouble, dex_pc);
1935 break;
1936 }
1937
1938 case Instruction::NOT_INT: {
1939 Unop_12x<HNot>(instruction, Primitive::kPrimInt, dex_pc);
1940 break;
1941 }
1942
1943 case Instruction::NOT_LONG: {
1944 Unop_12x<HNot>(instruction, Primitive::kPrimLong, dex_pc);
1945 break;
1946 }
1947
1948 case Instruction::INT_TO_LONG: {
1949 Conversion_12x(instruction, Primitive::kPrimInt, Primitive::kPrimLong, dex_pc);
1950 break;
1951 }
1952
1953 case Instruction::INT_TO_FLOAT: {
1954 Conversion_12x(instruction, Primitive::kPrimInt, Primitive::kPrimFloat, dex_pc);
1955 break;
1956 }
1957
1958 case Instruction::INT_TO_DOUBLE: {
1959 Conversion_12x(instruction, Primitive::kPrimInt, Primitive::kPrimDouble, dex_pc);
1960 break;
1961 }
1962
1963 case Instruction::LONG_TO_INT: {
1964 Conversion_12x(instruction, Primitive::kPrimLong, Primitive::kPrimInt, dex_pc);
1965 break;
1966 }
1967
1968 case Instruction::LONG_TO_FLOAT: {
1969 Conversion_12x(instruction, Primitive::kPrimLong, Primitive::kPrimFloat, dex_pc);
1970 break;
1971 }
1972
1973 case Instruction::LONG_TO_DOUBLE: {
1974 Conversion_12x(instruction, Primitive::kPrimLong, Primitive::kPrimDouble, dex_pc);
1975 break;
1976 }
1977
1978 case Instruction::FLOAT_TO_INT: {
1979 Conversion_12x(instruction, Primitive::kPrimFloat, Primitive::kPrimInt, dex_pc);
1980 break;
1981 }
1982
1983 case Instruction::FLOAT_TO_LONG: {
1984 Conversion_12x(instruction, Primitive::kPrimFloat, Primitive::kPrimLong, dex_pc);
1985 break;
1986 }
1987
1988 case Instruction::FLOAT_TO_DOUBLE: {
1989 Conversion_12x(instruction, Primitive::kPrimFloat, Primitive::kPrimDouble, dex_pc);
1990 break;
1991 }
1992
1993 case Instruction::DOUBLE_TO_INT: {
1994 Conversion_12x(instruction, Primitive::kPrimDouble, Primitive::kPrimInt, dex_pc);
1995 break;
1996 }
1997
1998 case Instruction::DOUBLE_TO_LONG: {
1999 Conversion_12x(instruction, Primitive::kPrimDouble, Primitive::kPrimLong, dex_pc);
2000 break;
2001 }
2002
2003 case Instruction::DOUBLE_TO_FLOAT: {
2004 Conversion_12x(instruction, Primitive::kPrimDouble, Primitive::kPrimFloat, dex_pc);
2005 break;
2006 }
2007
2008 case Instruction::INT_TO_BYTE: {
2009 Conversion_12x(instruction, Primitive::kPrimInt, Primitive::kPrimByte, dex_pc);
2010 break;
2011 }
2012
2013 case Instruction::INT_TO_SHORT: {
2014 Conversion_12x(instruction, Primitive::kPrimInt, Primitive::kPrimShort, dex_pc);
2015 break;
2016 }
2017
2018 case Instruction::INT_TO_CHAR: {
2019 Conversion_12x(instruction, Primitive::kPrimInt, Primitive::kPrimChar, dex_pc);
2020 break;
2021 }
2022
2023 case Instruction::ADD_INT: {
2024 Binop_23x<HAdd>(instruction, Primitive::kPrimInt, dex_pc);
2025 break;
2026 }
2027
2028 case Instruction::ADD_LONG: {
2029 Binop_23x<HAdd>(instruction, Primitive::kPrimLong, dex_pc);
2030 break;
2031 }
2032
2033 case Instruction::ADD_DOUBLE: {
2034 Binop_23x<HAdd>(instruction, Primitive::kPrimDouble, dex_pc);
2035 break;
2036 }
2037
2038 case Instruction::ADD_FLOAT: {
2039 Binop_23x<HAdd>(instruction, Primitive::kPrimFloat, dex_pc);
2040 break;
2041 }
2042
2043 case Instruction::SUB_INT: {
2044 Binop_23x<HSub>(instruction, Primitive::kPrimInt, dex_pc);
2045 break;
2046 }
2047
2048 case Instruction::SUB_LONG: {
2049 Binop_23x<HSub>(instruction, Primitive::kPrimLong, dex_pc);
2050 break;
2051 }
2052
2053 case Instruction::SUB_FLOAT: {
2054 Binop_23x<HSub>(instruction, Primitive::kPrimFloat, dex_pc);
2055 break;
2056 }
2057
2058 case Instruction::SUB_DOUBLE: {
2059 Binop_23x<HSub>(instruction, Primitive::kPrimDouble, dex_pc);
2060 break;
2061 }
2062
2063 case Instruction::ADD_INT_2ADDR: {
2064 Binop_12x<HAdd>(instruction, Primitive::kPrimInt, dex_pc);
2065 break;
2066 }
2067
2068 case Instruction::MUL_INT: {
2069 Binop_23x<HMul>(instruction, Primitive::kPrimInt, dex_pc);
2070 break;
2071 }
2072
2073 case Instruction::MUL_LONG: {
2074 Binop_23x<HMul>(instruction, Primitive::kPrimLong, dex_pc);
2075 break;
2076 }
2077
2078 case Instruction::MUL_FLOAT: {
2079 Binop_23x<HMul>(instruction, Primitive::kPrimFloat, dex_pc);
2080 break;
2081 }
2082
2083 case Instruction::MUL_DOUBLE: {
2084 Binop_23x<HMul>(instruction, Primitive::kPrimDouble, dex_pc);
2085 break;
2086 }
2087
2088 case Instruction::DIV_INT: {
2089 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegB(), instruction.VRegC(),
2090 dex_pc, Primitive::kPrimInt, false, true);
2091 break;
2092 }
2093
2094 case Instruction::DIV_LONG: {
2095 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegB(), instruction.VRegC(),
2096 dex_pc, Primitive::kPrimLong, false, true);
2097 break;
2098 }
2099
2100 case Instruction::DIV_FLOAT: {
2101 Binop_23x<HDiv>(instruction, Primitive::kPrimFloat, dex_pc);
2102 break;
2103 }
2104
2105 case Instruction::DIV_DOUBLE: {
2106 Binop_23x<HDiv>(instruction, Primitive::kPrimDouble, dex_pc);
2107 break;
2108 }
2109
2110 case Instruction::REM_INT: {
2111 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegB(), instruction.VRegC(),
2112 dex_pc, Primitive::kPrimInt, false, false);
2113 break;
2114 }
2115
2116 case Instruction::REM_LONG: {
2117 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegB(), instruction.VRegC(),
2118 dex_pc, Primitive::kPrimLong, false, false);
2119 break;
2120 }
2121
2122 case Instruction::REM_FLOAT: {
2123 Binop_23x<HRem>(instruction, Primitive::kPrimFloat, dex_pc);
2124 break;
2125 }
2126
2127 case Instruction::REM_DOUBLE: {
2128 Binop_23x<HRem>(instruction, Primitive::kPrimDouble, dex_pc);
2129 break;
2130 }
2131
2132 case Instruction::AND_INT: {
2133 Binop_23x<HAnd>(instruction, Primitive::kPrimInt, dex_pc);
2134 break;
2135 }
2136
2137 case Instruction::AND_LONG: {
2138 Binop_23x<HAnd>(instruction, Primitive::kPrimLong, dex_pc);
2139 break;
2140 }
2141
2142 case Instruction::SHL_INT: {
2143 Binop_23x_shift<HShl>(instruction, Primitive::kPrimInt, dex_pc);
2144 break;
2145 }
2146
2147 case Instruction::SHL_LONG: {
2148 Binop_23x_shift<HShl>(instruction, Primitive::kPrimLong, dex_pc);
2149 break;
2150 }
2151
2152 case Instruction::SHR_INT: {
2153 Binop_23x_shift<HShr>(instruction, Primitive::kPrimInt, dex_pc);
2154 break;
2155 }
2156
2157 case Instruction::SHR_LONG: {
2158 Binop_23x_shift<HShr>(instruction, Primitive::kPrimLong, dex_pc);
2159 break;
2160 }
2161
2162 case Instruction::USHR_INT: {
2163 Binop_23x_shift<HUShr>(instruction, Primitive::kPrimInt, dex_pc);
2164 break;
2165 }
2166
2167 case Instruction::USHR_LONG: {
2168 Binop_23x_shift<HUShr>(instruction, Primitive::kPrimLong, dex_pc);
2169 break;
2170 }
2171
2172 case Instruction::OR_INT: {
2173 Binop_23x<HOr>(instruction, Primitive::kPrimInt, dex_pc);
2174 break;
2175 }
2176
2177 case Instruction::OR_LONG: {
2178 Binop_23x<HOr>(instruction, Primitive::kPrimLong, dex_pc);
2179 break;
2180 }
2181
2182 case Instruction::XOR_INT: {
2183 Binop_23x<HXor>(instruction, Primitive::kPrimInt, dex_pc);
2184 break;
2185 }
2186
2187 case Instruction::XOR_LONG: {
2188 Binop_23x<HXor>(instruction, Primitive::kPrimLong, dex_pc);
2189 break;
2190 }
2191
2192 case Instruction::ADD_LONG_2ADDR: {
2193 Binop_12x<HAdd>(instruction, Primitive::kPrimLong, dex_pc);
2194 break;
2195 }
2196
2197 case Instruction::ADD_DOUBLE_2ADDR: {
2198 Binop_12x<HAdd>(instruction, Primitive::kPrimDouble, dex_pc);
2199 break;
2200 }
2201
2202 case Instruction::ADD_FLOAT_2ADDR: {
2203 Binop_12x<HAdd>(instruction, Primitive::kPrimFloat, dex_pc);
2204 break;
2205 }
2206
2207 case Instruction::SUB_INT_2ADDR: {
2208 Binop_12x<HSub>(instruction, Primitive::kPrimInt, dex_pc);
2209 break;
2210 }
2211
2212 case Instruction::SUB_LONG_2ADDR: {
2213 Binop_12x<HSub>(instruction, Primitive::kPrimLong, dex_pc);
2214 break;
2215 }
2216
2217 case Instruction::SUB_FLOAT_2ADDR: {
2218 Binop_12x<HSub>(instruction, Primitive::kPrimFloat, dex_pc);
2219 break;
2220 }
2221
2222 case Instruction::SUB_DOUBLE_2ADDR: {
2223 Binop_12x<HSub>(instruction, Primitive::kPrimDouble, dex_pc);
2224 break;
2225 }
2226
2227 case Instruction::MUL_INT_2ADDR: {
2228 Binop_12x<HMul>(instruction, Primitive::kPrimInt, dex_pc);
2229 break;
2230 }
2231
2232 case Instruction::MUL_LONG_2ADDR: {
2233 Binop_12x<HMul>(instruction, Primitive::kPrimLong, dex_pc);
2234 break;
2235 }
2236
2237 case Instruction::MUL_FLOAT_2ADDR: {
2238 Binop_12x<HMul>(instruction, Primitive::kPrimFloat, dex_pc);
2239 break;
2240 }
2241
2242 case Instruction::MUL_DOUBLE_2ADDR: {
2243 Binop_12x<HMul>(instruction, Primitive::kPrimDouble, dex_pc);
2244 break;
2245 }
2246
2247 case Instruction::DIV_INT_2ADDR: {
2248 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegA(), instruction.VRegB(),
2249 dex_pc, Primitive::kPrimInt, false, true);
2250 break;
2251 }
2252
2253 case Instruction::DIV_LONG_2ADDR: {
2254 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegA(), instruction.VRegB(),
2255 dex_pc, Primitive::kPrimLong, false, true);
2256 break;
2257 }
2258
2259 case Instruction::REM_INT_2ADDR: {
2260 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegA(), instruction.VRegB(),
2261 dex_pc, Primitive::kPrimInt, false, false);
2262 break;
2263 }
2264
2265 case Instruction::REM_LONG_2ADDR: {
2266 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegA(), instruction.VRegB(),
2267 dex_pc, Primitive::kPrimLong, false, false);
2268 break;
2269 }
2270
2271 case Instruction::REM_FLOAT_2ADDR: {
2272 Binop_12x<HRem>(instruction, Primitive::kPrimFloat, dex_pc);
2273 break;
2274 }
2275
2276 case Instruction::REM_DOUBLE_2ADDR: {
2277 Binop_12x<HRem>(instruction, Primitive::kPrimDouble, dex_pc);
2278 break;
2279 }
2280
2281 case Instruction::SHL_INT_2ADDR: {
2282 Binop_12x_shift<HShl>(instruction, Primitive::kPrimInt, dex_pc);
2283 break;
2284 }
2285
2286 case Instruction::SHL_LONG_2ADDR: {
2287 Binop_12x_shift<HShl>(instruction, Primitive::kPrimLong, dex_pc);
2288 break;
2289 }
2290
2291 case Instruction::SHR_INT_2ADDR: {
2292 Binop_12x_shift<HShr>(instruction, Primitive::kPrimInt, dex_pc);
2293 break;
2294 }
2295
2296 case Instruction::SHR_LONG_2ADDR: {
2297 Binop_12x_shift<HShr>(instruction, Primitive::kPrimLong, dex_pc);
2298 break;
2299 }
2300
2301 case Instruction::USHR_INT_2ADDR: {
2302 Binop_12x_shift<HUShr>(instruction, Primitive::kPrimInt, dex_pc);
2303 break;
2304 }
2305
2306 case Instruction::USHR_LONG_2ADDR: {
2307 Binop_12x_shift<HUShr>(instruction, Primitive::kPrimLong, dex_pc);
2308 break;
2309 }
2310
2311 case Instruction::DIV_FLOAT_2ADDR: {
2312 Binop_12x<HDiv>(instruction, Primitive::kPrimFloat, dex_pc);
2313 break;
2314 }
2315
2316 case Instruction::DIV_DOUBLE_2ADDR: {
2317 Binop_12x<HDiv>(instruction, Primitive::kPrimDouble, dex_pc);
2318 break;
2319 }
2320
2321 case Instruction::AND_INT_2ADDR: {
2322 Binop_12x<HAnd>(instruction, Primitive::kPrimInt, dex_pc);
2323 break;
2324 }
2325
2326 case Instruction::AND_LONG_2ADDR: {
2327 Binop_12x<HAnd>(instruction, Primitive::kPrimLong, dex_pc);
2328 break;
2329 }
2330
2331 case Instruction::OR_INT_2ADDR: {
2332 Binop_12x<HOr>(instruction, Primitive::kPrimInt, dex_pc);
2333 break;
2334 }
2335
2336 case Instruction::OR_LONG_2ADDR: {
2337 Binop_12x<HOr>(instruction, Primitive::kPrimLong, dex_pc);
2338 break;
2339 }
2340
2341 case Instruction::XOR_INT_2ADDR: {
2342 Binop_12x<HXor>(instruction, Primitive::kPrimInt, dex_pc);
2343 break;
2344 }
2345
2346 case Instruction::XOR_LONG_2ADDR: {
2347 Binop_12x<HXor>(instruction, Primitive::kPrimLong, dex_pc);
2348 break;
2349 }
2350
2351 case Instruction::ADD_INT_LIT16: {
2352 Binop_22s<HAdd>(instruction, false, dex_pc);
2353 break;
2354 }
2355
2356 case Instruction::AND_INT_LIT16: {
2357 Binop_22s<HAnd>(instruction, false, dex_pc);
2358 break;
2359 }
2360
2361 case Instruction::OR_INT_LIT16: {
2362 Binop_22s<HOr>(instruction, false, dex_pc);
2363 break;
2364 }
2365
2366 case Instruction::XOR_INT_LIT16: {
2367 Binop_22s<HXor>(instruction, false, dex_pc);
2368 break;
2369 }
2370
2371 case Instruction::RSUB_INT: {
2372 Binop_22s<HSub>(instruction, true, dex_pc);
2373 break;
2374 }
2375
2376 case Instruction::MUL_INT_LIT16: {
2377 Binop_22s<HMul>(instruction, false, dex_pc);
2378 break;
2379 }
2380
2381 case Instruction::ADD_INT_LIT8: {
2382 Binop_22b<HAdd>(instruction, false, dex_pc);
2383 break;
2384 }
2385
2386 case Instruction::AND_INT_LIT8: {
2387 Binop_22b<HAnd>(instruction, false, dex_pc);
2388 break;
2389 }
2390
2391 case Instruction::OR_INT_LIT8: {
2392 Binop_22b<HOr>(instruction, false, dex_pc);
2393 break;
2394 }
2395
2396 case Instruction::XOR_INT_LIT8: {
2397 Binop_22b<HXor>(instruction, false, dex_pc);
2398 break;
2399 }
2400
2401 case Instruction::RSUB_INT_LIT8: {
2402 Binop_22b<HSub>(instruction, true, dex_pc);
2403 break;
2404 }
2405
2406 case Instruction::MUL_INT_LIT8: {
2407 Binop_22b<HMul>(instruction, false, dex_pc);
2408 break;
2409 }
2410
2411 case Instruction::DIV_INT_LIT16:
2412 case Instruction::DIV_INT_LIT8: {
2413 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegB(), instruction.VRegC(),
2414 dex_pc, Primitive::kPrimInt, true, true);
2415 break;
2416 }
2417
2418 case Instruction::REM_INT_LIT16:
2419 case Instruction::REM_INT_LIT8: {
2420 BuildCheckedDivRem(instruction.VRegA(), instruction.VRegB(), instruction.VRegC(),
2421 dex_pc, Primitive::kPrimInt, true, false);
2422 break;
2423 }
2424
2425 case Instruction::SHL_INT_LIT8: {
2426 Binop_22b<HShl>(instruction, false, dex_pc);
2427 break;
2428 }
2429
2430 case Instruction::SHR_INT_LIT8: {
2431 Binop_22b<HShr>(instruction, false, dex_pc);
2432 break;
2433 }
2434
2435 case Instruction::USHR_INT_LIT8: {
2436 Binop_22b<HUShr>(instruction, false, dex_pc);
2437 break;
2438 }
2439
2440 case Instruction::NEW_INSTANCE: {
Andreas Gampea5b09a62016-11-17 15:21:22 -08002441 if (!BuildNewInstance(dex::TypeIndex(instruction.VRegB_21c()), dex_pc)) {
David Brazdildee58d62016-04-07 09:54:26 +00002442 return false;
2443 }
2444 UpdateLocal(instruction.VRegA(), current_block_->GetLastInstruction());
2445 break;
2446 }
2447
2448 case Instruction::NEW_ARRAY: {
Andreas Gampea5b09a62016-11-17 15:21:22 -08002449 dex::TypeIndex type_index(instruction.VRegC_22c());
David Brazdildee58d62016-04-07 09:54:26 +00002450 HInstruction* length = LoadLocal(instruction.VRegB_22c(), Primitive::kPrimInt);
2451 bool finalizable;
2452 QuickEntrypointEnum entrypoint = NeedsAccessCheck(type_index, &finalizable)
2453 ? kQuickAllocArrayWithAccessCheck
2454 : kQuickAllocArray;
2455 AppendInstruction(new (arena_) HNewArray(length,
2456 graph_->GetCurrentMethod(),
2457 dex_pc,
2458 type_index,
2459 *dex_compilation_unit_->GetDexFile(),
2460 entrypoint));
2461 UpdateLocal(instruction.VRegA_22c(), current_block_->GetLastInstruction());
2462 break;
2463 }
2464
2465 case Instruction::FILLED_NEW_ARRAY: {
2466 uint32_t number_of_vreg_arguments = instruction.VRegA_35c();
Andreas Gampea5b09a62016-11-17 15:21:22 -08002467 dex::TypeIndex type_index(instruction.VRegB_35c());
David Brazdildee58d62016-04-07 09:54:26 +00002468 uint32_t args[5];
2469 instruction.GetVarArgs(args);
2470 BuildFilledNewArray(dex_pc, type_index, number_of_vreg_arguments, false, args, 0);
2471 break;
2472 }
2473
2474 case Instruction::FILLED_NEW_ARRAY_RANGE: {
2475 uint32_t number_of_vreg_arguments = instruction.VRegA_3rc();
Andreas Gampea5b09a62016-11-17 15:21:22 -08002476 dex::TypeIndex type_index(instruction.VRegB_3rc());
David Brazdildee58d62016-04-07 09:54:26 +00002477 uint32_t register_index = instruction.VRegC_3rc();
2478 BuildFilledNewArray(
2479 dex_pc, type_index, number_of_vreg_arguments, true, nullptr, register_index);
2480 break;
2481 }
2482
2483 case Instruction::FILL_ARRAY_DATA: {
2484 BuildFillArrayData(instruction, dex_pc);
2485 break;
2486 }
2487
2488 case Instruction::MOVE_RESULT:
2489 case Instruction::MOVE_RESULT_WIDE:
2490 case Instruction::MOVE_RESULT_OBJECT: {
2491 DCHECK(latest_result_ != nullptr);
2492 UpdateLocal(instruction.VRegA(), latest_result_);
2493 latest_result_ = nullptr;
2494 break;
2495 }
2496
2497 case Instruction::CMP_LONG: {
2498 Binop_23x_cmp(instruction, Primitive::kPrimLong, ComparisonBias::kNoBias, dex_pc);
2499 break;
2500 }
2501
2502 case Instruction::CMPG_FLOAT: {
2503 Binop_23x_cmp(instruction, Primitive::kPrimFloat, ComparisonBias::kGtBias, dex_pc);
2504 break;
2505 }
2506
2507 case Instruction::CMPG_DOUBLE: {
2508 Binop_23x_cmp(instruction, Primitive::kPrimDouble, ComparisonBias::kGtBias, dex_pc);
2509 break;
2510 }
2511
2512 case Instruction::CMPL_FLOAT: {
2513 Binop_23x_cmp(instruction, Primitive::kPrimFloat, ComparisonBias::kLtBias, dex_pc);
2514 break;
2515 }
2516
2517 case Instruction::CMPL_DOUBLE: {
2518 Binop_23x_cmp(instruction, Primitive::kPrimDouble, ComparisonBias::kLtBias, dex_pc);
2519 break;
2520 }
2521
2522 case Instruction::NOP:
2523 break;
2524
2525 case Instruction::IGET:
2526 case Instruction::IGET_QUICK:
2527 case Instruction::IGET_WIDE:
2528 case Instruction::IGET_WIDE_QUICK:
2529 case Instruction::IGET_OBJECT:
2530 case Instruction::IGET_OBJECT_QUICK:
2531 case Instruction::IGET_BOOLEAN:
2532 case Instruction::IGET_BOOLEAN_QUICK:
2533 case Instruction::IGET_BYTE:
2534 case Instruction::IGET_BYTE_QUICK:
2535 case Instruction::IGET_CHAR:
2536 case Instruction::IGET_CHAR_QUICK:
2537 case Instruction::IGET_SHORT:
2538 case Instruction::IGET_SHORT_QUICK: {
2539 if (!BuildInstanceFieldAccess(instruction, dex_pc, false)) {
2540 return false;
2541 }
2542 break;
2543 }
2544
2545 case Instruction::IPUT:
2546 case Instruction::IPUT_QUICK:
2547 case Instruction::IPUT_WIDE:
2548 case Instruction::IPUT_WIDE_QUICK:
2549 case Instruction::IPUT_OBJECT:
2550 case Instruction::IPUT_OBJECT_QUICK:
2551 case Instruction::IPUT_BOOLEAN:
2552 case Instruction::IPUT_BOOLEAN_QUICK:
2553 case Instruction::IPUT_BYTE:
2554 case Instruction::IPUT_BYTE_QUICK:
2555 case Instruction::IPUT_CHAR:
2556 case Instruction::IPUT_CHAR_QUICK:
2557 case Instruction::IPUT_SHORT:
2558 case Instruction::IPUT_SHORT_QUICK: {
2559 if (!BuildInstanceFieldAccess(instruction, dex_pc, true)) {
2560 return false;
2561 }
2562 break;
2563 }
2564
2565 case Instruction::SGET:
2566 case Instruction::SGET_WIDE:
2567 case Instruction::SGET_OBJECT:
2568 case Instruction::SGET_BOOLEAN:
2569 case Instruction::SGET_BYTE:
2570 case Instruction::SGET_CHAR:
2571 case Instruction::SGET_SHORT: {
2572 if (!BuildStaticFieldAccess(instruction, dex_pc, false)) {
2573 return false;
2574 }
2575 break;
2576 }
2577
2578 case Instruction::SPUT:
2579 case Instruction::SPUT_WIDE:
2580 case Instruction::SPUT_OBJECT:
2581 case Instruction::SPUT_BOOLEAN:
2582 case Instruction::SPUT_BYTE:
2583 case Instruction::SPUT_CHAR:
2584 case Instruction::SPUT_SHORT: {
2585 if (!BuildStaticFieldAccess(instruction, dex_pc, true)) {
2586 return false;
2587 }
2588 break;
2589 }
2590
2591#define ARRAY_XX(kind, anticipated_type) \
2592 case Instruction::AGET##kind: { \
2593 BuildArrayAccess(instruction, dex_pc, false, anticipated_type); \
2594 break; \
2595 } \
2596 case Instruction::APUT##kind: { \
2597 BuildArrayAccess(instruction, dex_pc, true, anticipated_type); \
2598 break; \
2599 }
2600
2601 ARRAY_XX(, Primitive::kPrimInt);
2602 ARRAY_XX(_WIDE, Primitive::kPrimLong);
2603 ARRAY_XX(_OBJECT, Primitive::kPrimNot);
2604 ARRAY_XX(_BOOLEAN, Primitive::kPrimBoolean);
2605 ARRAY_XX(_BYTE, Primitive::kPrimByte);
2606 ARRAY_XX(_CHAR, Primitive::kPrimChar);
2607 ARRAY_XX(_SHORT, Primitive::kPrimShort);
2608
2609 case Instruction::ARRAY_LENGTH: {
David Brazdilc120bbe2016-04-22 16:57:00 +01002610 HInstruction* object = LoadNullCheckedLocal(instruction.VRegB_12x(), dex_pc);
David Brazdildee58d62016-04-07 09:54:26 +00002611 AppendInstruction(new (arena_) HArrayLength(object, dex_pc));
2612 UpdateLocal(instruction.VRegA_12x(), current_block_->GetLastInstruction());
2613 break;
2614 }
2615
2616 case Instruction::CONST_STRING: {
Andreas Gampe8a0128a2016-11-28 07:38:35 -08002617 dex::StringIndex string_index(instruction.VRegB_21c());
David Brazdildee58d62016-04-07 09:54:26 +00002618 AppendInstruction(
2619 new (arena_) HLoadString(graph_->GetCurrentMethod(), string_index, *dex_file_, dex_pc));
2620 UpdateLocal(instruction.VRegA_21c(), current_block_->GetLastInstruction());
2621 break;
2622 }
2623
2624 case Instruction::CONST_STRING_JUMBO: {
Andreas Gampe8a0128a2016-11-28 07:38:35 -08002625 dex::StringIndex string_index(instruction.VRegB_31c());
David Brazdildee58d62016-04-07 09:54:26 +00002626 AppendInstruction(
2627 new (arena_) HLoadString(graph_->GetCurrentMethod(), string_index, *dex_file_, dex_pc));
2628 UpdateLocal(instruction.VRegA_31c(), current_block_->GetLastInstruction());
2629 break;
2630 }
2631
2632 case Instruction::CONST_CLASS: {
Andreas Gampea5b09a62016-11-17 15:21:22 -08002633 dex::TypeIndex type_index(instruction.VRegB_21c());
David Brazdildee58d62016-04-07 09:54:26 +00002634 // `CanAccessTypeWithoutChecks` will tell whether the method being
2635 // built is trying to access its own class, so that the generated
2636 // code can optimize for this case. However, the optimization does not
2637 // work for inlining, so we use `IsOutermostCompilingClass` instead.
Vladimir Marko3cd50df2016-04-13 19:29:26 +01002638 ScopedObjectAccess soa(Thread::Current());
2639 Handle<mirror::DexCache> dex_cache = dex_compilation_unit_->GetDexCache();
David Brazdildee58d62016-04-07 09:54:26 +00002640 bool can_access = compiler_driver_->CanAccessTypeWithoutChecks(
Vladimir Marko3cd50df2016-04-13 19:29:26 +01002641 dex_compilation_unit_->GetDexMethodIndex(), dex_cache, type_index);
David Brazdildee58d62016-04-07 09:54:26 +00002642 AppendInstruction(new (arena_) HLoadClass(
2643 graph_->GetCurrentMethod(),
2644 type_index,
2645 *dex_file_,
2646 IsOutermostCompilingClass(type_index),
2647 dex_pc,
Nicolas Geoffray56876342016-12-16 16:09:08 +00002648 !can_access));
David Brazdildee58d62016-04-07 09:54:26 +00002649 UpdateLocal(instruction.VRegA_21c(), current_block_->GetLastInstruction());
2650 break;
2651 }
2652
2653 case Instruction::MOVE_EXCEPTION: {
2654 AppendInstruction(new (arena_) HLoadException(dex_pc));
2655 UpdateLocal(instruction.VRegA_11x(), current_block_->GetLastInstruction());
2656 AppendInstruction(new (arena_) HClearException(dex_pc));
2657 break;
2658 }
2659
2660 case Instruction::THROW: {
2661 HInstruction* exception = LoadLocal(instruction.VRegA_11x(), Primitive::kPrimNot);
2662 AppendInstruction(new (arena_) HThrow(exception, dex_pc));
2663 // We finished building this block. Set the current block to null to avoid
2664 // adding dead instructions to it.
2665 current_block_ = nullptr;
2666 break;
2667 }
2668
2669 case Instruction::INSTANCE_OF: {
2670 uint8_t destination = instruction.VRegA_22c();
2671 uint8_t reference = instruction.VRegB_22c();
Andreas Gampea5b09a62016-11-17 15:21:22 -08002672 dex::TypeIndex type_index(instruction.VRegC_22c());
David Brazdildee58d62016-04-07 09:54:26 +00002673 BuildTypeCheck(instruction, destination, reference, type_index, dex_pc);
2674 break;
2675 }
2676
2677 case Instruction::CHECK_CAST: {
2678 uint8_t reference = instruction.VRegA_21c();
Andreas Gampea5b09a62016-11-17 15:21:22 -08002679 dex::TypeIndex type_index(instruction.VRegB_21c());
David Brazdildee58d62016-04-07 09:54:26 +00002680 BuildTypeCheck(instruction, -1, reference, type_index, dex_pc);
2681 break;
2682 }
2683
2684 case Instruction::MONITOR_ENTER: {
2685 AppendInstruction(new (arena_) HMonitorOperation(
2686 LoadLocal(instruction.VRegA_11x(), Primitive::kPrimNot),
2687 HMonitorOperation::OperationKind::kEnter,
2688 dex_pc));
2689 break;
2690 }
2691
2692 case Instruction::MONITOR_EXIT: {
2693 AppendInstruction(new (arena_) HMonitorOperation(
2694 LoadLocal(instruction.VRegA_11x(), Primitive::kPrimNot),
2695 HMonitorOperation::OperationKind::kExit,
2696 dex_pc));
2697 break;
2698 }
2699
2700 case Instruction::SPARSE_SWITCH:
2701 case Instruction::PACKED_SWITCH: {
2702 BuildSwitch(instruction, dex_pc);
2703 break;
2704 }
2705
2706 default:
2707 VLOG(compiler) << "Did not compile "
David Sehr709b0702016-10-13 09:12:37 -07002708 << dex_file_->PrettyMethod(dex_compilation_unit_->GetDexMethodIndex())
David Brazdildee58d62016-04-07 09:54:26 +00002709 << " because of unhandled instruction "
2710 << instruction.Name();
2711 MaybeRecordStat(MethodCompilationStat::kNotCompiledUnhandledInstruction);
2712 return false;
2713 }
2714 return true;
2715} // NOLINT(readability/fn_size)
2716
2717} // namespace art