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1 // Copyright 2012 the V8 project authors. All rights reserved.
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4 
5 #include "src/crankshaft/mips64/lithium-mips64.h"
6 
7 #include <sstream>
8 
9 #if V8_TARGET_ARCH_MIPS64
10 
11 #include "src/crankshaft/hydrogen-osr.h"
12 #include "src/crankshaft/lithium-inl.h"
13 #include "src/crankshaft/mips64/lithium-codegen-mips64.h"
14 
15 namespace v8 {
16 namespace internal {
17 
18 #define DEFINE_COMPILE(type)                            \
19   void L##type::CompileToNative(LCodeGen* generator) {  \
20     generator->Do##type(this);                          \
21   }
LITHIUM_CONCRETE_INSTRUCTION_LIST(DEFINE_COMPILE)22 LITHIUM_CONCRETE_INSTRUCTION_LIST(DEFINE_COMPILE)
23 #undef DEFINE_COMPILE
24 
25 #ifdef DEBUG
26 void LInstruction::VerifyCall() {
27   // Call instructions can use only fixed registers as temporaries and
28   // outputs because all registers are blocked by the calling convention.
29   // Inputs operands must use a fixed register or use-at-start policy or
30   // a non-register policy.
31   DCHECK(Output() == NULL ||
32          LUnallocated::cast(Output())->HasFixedPolicy() ||
33          !LUnallocated::cast(Output())->HasRegisterPolicy());
34   for (UseIterator it(this); !it.Done(); it.Advance()) {
35     LUnallocated* operand = LUnallocated::cast(it.Current());
36     DCHECK(operand->HasFixedPolicy() ||
37            operand->IsUsedAtStart());
38   }
39   for (TempIterator it(this); !it.Done(); it.Advance()) {
40     LUnallocated* operand = LUnallocated::cast(it.Current());
41     DCHECK(operand->HasFixedPolicy() ||!operand->HasRegisterPolicy());
42   }
43 }
44 #endif
45 
46 
PrintTo(StringStream * stream)47 void LInstruction::PrintTo(StringStream* stream) {
48   stream->Add("%s ", this->Mnemonic());
49 
50   PrintOutputOperandTo(stream);
51 
52   PrintDataTo(stream);
53 
54   if (HasEnvironment()) {
55     stream->Add(" ");
56     environment()->PrintTo(stream);
57   }
58 
59   if (HasPointerMap()) {
60     stream->Add(" ");
61     pointer_map()->PrintTo(stream);
62   }
63 }
64 
65 
PrintDataTo(StringStream * stream)66 void LInstruction::PrintDataTo(StringStream* stream) {
67   stream->Add("= ");
68   for (int i = 0; i < InputCount(); i++) {
69     if (i > 0) stream->Add(" ");
70     if (InputAt(i) == NULL) {
71       stream->Add("NULL");
72     } else {
73       InputAt(i)->PrintTo(stream);
74     }
75   }
76 }
77 
78 
PrintOutputOperandTo(StringStream * stream)79 void LInstruction::PrintOutputOperandTo(StringStream* stream) {
80   if (HasResult()) result()->PrintTo(stream);
81 }
82 
83 
PrintDataTo(StringStream * stream)84 void LLabel::PrintDataTo(StringStream* stream) {
85   LGap::PrintDataTo(stream);
86   LLabel* rep = replacement();
87   if (rep != NULL) {
88     stream->Add(" Dead block replaced with B%d", rep->block_id());
89   }
90 }
91 
92 
IsRedundant() const93 bool LGap::IsRedundant() const {
94   for (int i = 0; i < 4; i++) {
95     if (parallel_moves_[i] != NULL && !parallel_moves_[i]->IsRedundant()) {
96       return false;
97     }
98   }
99 
100   return true;
101 }
102 
103 
PrintDataTo(StringStream * stream)104 void LGap::PrintDataTo(StringStream* stream) {
105   for (int i = 0; i < 4; i++) {
106     stream->Add("(");
107     if (parallel_moves_[i] != NULL) {
108       parallel_moves_[i]->PrintDataTo(stream);
109     }
110     stream->Add(") ");
111   }
112 }
113 
114 
Mnemonic() const115 const char* LArithmeticD::Mnemonic() const {
116   switch (op()) {
117     case Token::ADD: return "add-d";
118     case Token::SUB: return "sub-d";
119     case Token::MUL: return "mul-d";
120     case Token::DIV: return "div-d";
121     case Token::MOD: return "mod-d";
122     default:
123       UNREACHABLE();
124       return NULL;
125   }
126 }
127 
128 
Mnemonic() const129 const char* LArithmeticT::Mnemonic() const {
130   switch (op()) {
131     case Token::ADD: return "add-t";
132     case Token::SUB: return "sub-t";
133     case Token::MUL: return "mul-t";
134     case Token::MOD: return "mod-t";
135     case Token::DIV: return "div-t";
136     case Token::BIT_AND: return "bit-and-t";
137     case Token::BIT_OR: return "bit-or-t";
138     case Token::BIT_XOR: return "bit-xor-t";
139     case Token::ROR: return "ror-t";
140     case Token::SHL: return "sll-t";
141     case Token::SAR: return "sra-t";
142     case Token::SHR: return "srl-t";
143     default:
144       UNREACHABLE();
145       return NULL;
146   }
147 }
148 
149 
HasInterestingComment(LCodeGen * gen) const150 bool LGoto::HasInterestingComment(LCodeGen* gen) const {
151   return !gen->IsNextEmittedBlock(block_id());
152 }
153 
154 
PrintDataTo(StringStream * stream)155 void LGoto::PrintDataTo(StringStream* stream) {
156   stream->Add("B%d", block_id());
157 }
158 
159 
PrintDataTo(StringStream * stream)160 void LBranch::PrintDataTo(StringStream* stream) {
161   stream->Add("B%d | B%d on ", true_block_id(), false_block_id());
162   value()->PrintTo(stream);
163 }
164 
165 
DoDebugBreak(HDebugBreak * instr)166 LInstruction* LChunkBuilder::DoDebugBreak(HDebugBreak* instr) {
167   return new(zone()) LDebugBreak();
168 }
169 
170 
PrintDataTo(StringStream * stream)171 void LCompareNumericAndBranch::PrintDataTo(StringStream* stream) {
172   stream->Add("if ");
173   left()->PrintTo(stream);
174   stream->Add(" %s ", Token::String(op()));
175   right()->PrintTo(stream);
176   stream->Add(" then B%d else B%d", true_block_id(), false_block_id());
177 }
178 
179 
PrintDataTo(StringStream * stream)180 void LIsStringAndBranch::PrintDataTo(StringStream* stream) {
181   stream->Add("if is_string(");
182   value()->PrintTo(stream);
183   stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
184 }
185 
186 
PrintDataTo(StringStream * stream)187 void LIsSmiAndBranch::PrintDataTo(StringStream* stream) {
188   stream->Add("if is_smi(");
189   value()->PrintTo(stream);
190   stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
191 }
192 
193 
PrintDataTo(StringStream * stream)194 void LIsUndetectableAndBranch::PrintDataTo(StringStream* stream) {
195   stream->Add("if is_undetectable(");
196   value()->PrintTo(stream);
197   stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
198 }
199 
200 
PrintDataTo(StringStream * stream)201 void LStringCompareAndBranch::PrintDataTo(StringStream* stream) {
202   stream->Add("if string_compare(");
203   left()->PrintTo(stream);
204   right()->PrintTo(stream);
205   stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
206 }
207 
208 
PrintDataTo(StringStream * stream)209 void LHasInstanceTypeAndBranch::PrintDataTo(StringStream* stream) {
210   stream->Add("if has_instance_type(");
211   value()->PrintTo(stream);
212   stream->Add(") then B%d else B%d", true_block_id(), false_block_id());
213 }
214 
PrintDataTo(StringStream * stream)215 void LClassOfTestAndBranch::PrintDataTo(StringStream* stream) {
216   stream->Add("if class_of_test(");
217   value()->PrintTo(stream);
218   stream->Add(", \"%o\") then B%d else B%d",
219               *hydrogen()->class_name(),
220               true_block_id(),
221               false_block_id());
222 }
223 
224 
PrintDataTo(StringStream * stream)225 void LTypeofIsAndBranch::PrintDataTo(StringStream* stream) {
226   stream->Add("if typeof ");
227   value()->PrintTo(stream);
228   stream->Add(" == \"%s\" then B%d else B%d",
229               hydrogen()->type_literal()->ToCString().get(),
230               true_block_id(), false_block_id());
231 }
232 
233 
PrintDataTo(StringStream * stream)234 void LStoreCodeEntry::PrintDataTo(StringStream* stream) {
235   stream->Add(" = ");
236   function()->PrintTo(stream);
237   stream->Add(".code_entry = ");
238   code_object()->PrintTo(stream);
239 }
240 
241 
PrintDataTo(StringStream * stream)242 void LInnerAllocatedObject::PrintDataTo(StringStream* stream) {
243   stream->Add(" = ");
244   base_object()->PrintTo(stream);
245   stream->Add(" + ");
246   offset()->PrintTo(stream);
247 }
248 
249 
PrintDataTo(StringStream * stream)250 void LCallWithDescriptor::PrintDataTo(StringStream* stream) {
251   for (int i = 0; i < InputCount(); i++) {
252     InputAt(i)->PrintTo(stream);
253     stream->Add(" ");
254   }
255   stream->Add("#%d / ", arity());
256 }
257 
258 
PrintDataTo(StringStream * stream)259 void LLoadContextSlot::PrintDataTo(StringStream* stream) {
260   context()->PrintTo(stream);
261   stream->Add("[%d]", slot_index());
262 }
263 
264 
PrintDataTo(StringStream * stream)265 void LStoreContextSlot::PrintDataTo(StringStream* stream) {
266   context()->PrintTo(stream);
267   stream->Add("[%d] <- ", slot_index());
268   value()->PrintTo(stream);
269 }
270 
271 
PrintDataTo(StringStream * stream)272 void LInvokeFunction::PrintDataTo(StringStream* stream) {
273   stream->Add("= ");
274   function()->PrintTo(stream);
275   stream->Add(" #%d / ", arity());
276 }
277 
278 
PrintDataTo(StringStream * stream)279 void LCallNewArray::PrintDataTo(StringStream* stream) {
280   stream->Add("= ");
281   constructor()->PrintTo(stream);
282   stream->Add(" #%d / ", arity());
283   ElementsKind kind = hydrogen()->elements_kind();
284   stream->Add(" (%s) ", ElementsKindToString(kind));
285 }
286 
287 
PrintDataTo(StringStream * stream)288 void LAccessArgumentsAt::PrintDataTo(StringStream* stream) {
289   arguments()->PrintTo(stream);
290   stream->Add(" length ");
291   length()->PrintTo(stream);
292   stream->Add(" index ");
293   index()->PrintTo(stream);
294 }
295 
296 
PrintDataTo(StringStream * stream)297 void LStoreNamedField::PrintDataTo(StringStream* stream) {
298   object()->PrintTo(stream);
299   std::ostringstream os;
300   os << hydrogen()->access() << " <- ";
301   stream->Add(os.str().c_str());
302   value()->PrintTo(stream);
303 }
304 
305 
PrintDataTo(StringStream * stream)306 void LLoadKeyed::PrintDataTo(StringStream* stream) {
307   elements()->PrintTo(stream);
308   stream->Add("[");
309   key()->PrintTo(stream);
310   if (hydrogen()->IsDehoisted()) {
311     stream->Add(" + %d]", base_offset());
312   } else {
313     stream->Add("]");
314   }
315 }
316 
317 
PrintDataTo(StringStream * stream)318 void LStoreKeyed::PrintDataTo(StringStream* stream) {
319   elements()->PrintTo(stream);
320   stream->Add("[");
321   key()->PrintTo(stream);
322   if (hydrogen()->IsDehoisted()) {
323     stream->Add(" + %d] <-", base_offset());
324   } else {
325     stream->Add("] <- ");
326   }
327 
328   if (value() == NULL) {
329     DCHECK(hydrogen()->IsConstantHoleStore() &&
330            hydrogen()->value()->representation().IsDouble());
331     stream->Add("<the hole(nan)>");
332   } else {
333     value()->PrintTo(stream);
334   }
335 }
336 
337 
PrintDataTo(StringStream * stream)338 void LTransitionElementsKind::PrintDataTo(StringStream* stream) {
339   object()->PrintTo(stream);
340   stream->Add(" %p -> %p", *original_map(), *transitioned_map());
341 }
342 
343 
GetNextSpillIndex(RegisterKind kind)344 int LPlatformChunk::GetNextSpillIndex(RegisterKind kind) {
345   // Skip a slot if for a double-width slot.
346   if (kind == DOUBLE_REGISTERS) current_frame_slots_++;
347   return current_frame_slots_++;
348 }
349 
350 
GetNextSpillSlot(RegisterKind kind)351 LOperand* LPlatformChunk::GetNextSpillSlot(RegisterKind kind)  {
352   int index = GetNextSpillIndex(kind);
353   if (kind == DOUBLE_REGISTERS) {
354     return LDoubleStackSlot::Create(index, zone());
355   } else {
356     DCHECK(kind == GENERAL_REGISTERS);
357     return LStackSlot::Create(index, zone());
358   }
359 }
360 
361 
Build()362 LPlatformChunk* LChunkBuilder::Build() {
363   DCHECK(is_unused());
364   chunk_ = new(zone()) LPlatformChunk(info(), graph());
365   LPhase phase("L_Building chunk", chunk_);
366   status_ = BUILDING;
367 
368   // If compiling for OSR, reserve space for the unoptimized frame,
369   // which will be subsumed into this frame.
370   if (graph()->has_osr()) {
371     for (int i = graph()->osr()->UnoptimizedFrameSlots(); i > 0; i--) {
372       chunk_->GetNextSpillIndex(GENERAL_REGISTERS);
373     }
374   }
375 
376   const ZoneList<HBasicBlock*>* blocks = graph()->blocks();
377   for (int i = 0; i < blocks->length(); i++) {
378     HBasicBlock* next = NULL;
379     if (i < blocks->length() - 1) next = blocks->at(i + 1);
380     DoBasicBlock(blocks->at(i), next);
381     if (is_aborted()) return NULL;
382   }
383   status_ = DONE;
384   return chunk_;
385 }
386 
387 
ToUnallocated(Register reg)388 LUnallocated* LChunkBuilder::ToUnallocated(Register reg) {
389   return new (zone()) LUnallocated(LUnallocated::FIXED_REGISTER, reg.code());
390 }
391 
392 
ToUnallocated(DoubleRegister reg)393 LUnallocated* LChunkBuilder::ToUnallocated(DoubleRegister reg) {
394   return new (zone())
395       LUnallocated(LUnallocated::FIXED_DOUBLE_REGISTER, reg.code());
396 }
397 
398 
UseFixed(HValue * value,Register fixed_register)399 LOperand* LChunkBuilder::UseFixed(HValue* value, Register fixed_register) {
400   return Use(value, ToUnallocated(fixed_register));
401 }
402 
403 
UseFixedDouble(HValue * value,DoubleRegister reg)404 LOperand* LChunkBuilder::UseFixedDouble(HValue* value, DoubleRegister reg) {
405   return Use(value, ToUnallocated(reg));
406 }
407 
408 
UseRegister(HValue * value)409 LOperand* LChunkBuilder::UseRegister(HValue* value) {
410   return Use(value, new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER));
411 }
412 
413 
UseRegisterAtStart(HValue * value)414 LOperand* LChunkBuilder::UseRegisterAtStart(HValue* value) {
415   return Use(value,
416              new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER,
417                                       LUnallocated::USED_AT_START));
418 }
419 
420 
UseTempRegister(HValue * value)421 LOperand* LChunkBuilder::UseTempRegister(HValue* value) {
422   return Use(value, new(zone()) LUnallocated(LUnallocated::WRITABLE_REGISTER));
423 }
424 
425 
Use(HValue * value)426 LOperand* LChunkBuilder::Use(HValue* value) {
427   return Use(value, new(zone()) LUnallocated(LUnallocated::NONE));
428 }
429 
430 
UseAtStart(HValue * value)431 LOperand* LChunkBuilder::UseAtStart(HValue* value) {
432   return Use(value, new(zone()) LUnallocated(LUnallocated::NONE,
433                                      LUnallocated::USED_AT_START));
434 }
435 
436 
UseOrConstant(HValue * value)437 LOperand* LChunkBuilder::UseOrConstant(HValue* value) {
438   return value->IsConstant()
439       ? chunk_->DefineConstantOperand(HConstant::cast(value))
440       : Use(value);
441 }
442 
443 
UseOrConstantAtStart(HValue * value)444 LOperand* LChunkBuilder::UseOrConstantAtStart(HValue* value) {
445   return value->IsConstant()
446       ? chunk_->DefineConstantOperand(HConstant::cast(value))
447       : UseAtStart(value);
448 }
449 
450 
UseRegisterOrConstant(HValue * value)451 LOperand* LChunkBuilder::UseRegisterOrConstant(HValue* value) {
452   return value->IsConstant()
453       ? chunk_->DefineConstantOperand(HConstant::cast(value))
454       : UseRegister(value);
455 }
456 
457 
UseRegisterOrConstantAtStart(HValue * value)458 LOperand* LChunkBuilder::UseRegisterOrConstantAtStart(HValue* value) {
459   return value->IsConstant()
460       ? chunk_->DefineConstantOperand(HConstant::cast(value))
461       : UseRegisterAtStart(value);
462 }
463 
464 
UseConstant(HValue * value)465 LOperand* LChunkBuilder::UseConstant(HValue* value) {
466   return chunk_->DefineConstantOperand(HConstant::cast(value));
467 }
468 
469 
UseAny(HValue * value)470 LOperand* LChunkBuilder::UseAny(HValue* value) {
471   return value->IsConstant()
472       ? chunk_->DefineConstantOperand(HConstant::cast(value))
473       :  Use(value, new(zone()) LUnallocated(LUnallocated::ANY));
474 }
475 
476 
Use(HValue * value,LUnallocated * operand)477 LOperand* LChunkBuilder::Use(HValue* value, LUnallocated* operand) {
478   if (value->EmitAtUses()) {
479     HInstruction* instr = HInstruction::cast(value);
480     VisitInstruction(instr);
481   }
482   operand->set_virtual_register(value->id());
483   return operand;
484 }
485 
486 
Define(LTemplateResultInstruction<1> * instr,LUnallocated * result)487 LInstruction* LChunkBuilder::Define(LTemplateResultInstruction<1>* instr,
488                                     LUnallocated* result) {
489   result->set_virtual_register(current_instruction_->id());
490   instr->set_result(result);
491   return instr;
492 }
493 
494 
DefineAsRegister(LTemplateResultInstruction<1> * instr)495 LInstruction* LChunkBuilder::DefineAsRegister(
496     LTemplateResultInstruction<1>* instr) {
497   return Define(instr,
498                 new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER));
499 }
500 
501 
DefineAsSpilled(LTemplateResultInstruction<1> * instr,int index)502 LInstruction* LChunkBuilder::DefineAsSpilled(
503     LTemplateResultInstruction<1>* instr, int index) {
504   return Define(instr,
505                 new(zone()) LUnallocated(LUnallocated::FIXED_SLOT, index));
506 }
507 
508 
DefineSameAsFirst(LTemplateResultInstruction<1> * instr)509 LInstruction* LChunkBuilder::DefineSameAsFirst(
510     LTemplateResultInstruction<1>* instr) {
511   return Define(instr,
512                 new(zone()) LUnallocated(LUnallocated::SAME_AS_FIRST_INPUT));
513 }
514 
515 
DefineFixed(LTemplateResultInstruction<1> * instr,Register reg)516 LInstruction* LChunkBuilder::DefineFixed(
517     LTemplateResultInstruction<1>* instr, Register reg) {
518   return Define(instr, ToUnallocated(reg));
519 }
520 
521 
DefineFixedDouble(LTemplateResultInstruction<1> * instr,DoubleRegister reg)522 LInstruction* LChunkBuilder::DefineFixedDouble(
523     LTemplateResultInstruction<1>* instr, DoubleRegister reg) {
524   return Define(instr, ToUnallocated(reg));
525 }
526 
527 
AssignEnvironment(LInstruction * instr)528 LInstruction* LChunkBuilder::AssignEnvironment(LInstruction* instr) {
529   HEnvironment* hydrogen_env = current_block_->last_environment();
530   return LChunkBuilderBase::AssignEnvironment(instr, hydrogen_env);
531 }
532 
533 
MarkAsCall(LInstruction * instr,HInstruction * hinstr,CanDeoptimize can_deoptimize)534 LInstruction* LChunkBuilder::MarkAsCall(LInstruction* instr,
535                                         HInstruction* hinstr,
536                                         CanDeoptimize can_deoptimize) {
537   info()->MarkAsNonDeferredCalling();
538 #ifdef DEBUG
539   instr->VerifyCall();
540 #endif
541   instr->MarkAsCall();
542   instr = AssignPointerMap(instr);
543 
544   // If instruction does not have side-effects lazy deoptimization
545   // after the call will try to deoptimize to the point before the call.
546   // Thus we still need to attach environment to this call even if
547   // call sequence can not deoptimize eagerly.
548   bool needs_environment =
549       (can_deoptimize == CAN_DEOPTIMIZE_EAGERLY) ||
550       !hinstr->HasObservableSideEffects();
551   if (needs_environment && !instr->HasEnvironment()) {
552     instr = AssignEnvironment(instr);
553     // We can't really figure out if the environment is needed or not.
554     instr->environment()->set_has_been_used();
555   }
556 
557   return instr;
558 }
559 
560 
AssignPointerMap(LInstruction * instr)561 LInstruction* LChunkBuilder::AssignPointerMap(LInstruction* instr) {
562   DCHECK(!instr->HasPointerMap());
563   instr->set_pointer_map(new(zone()) LPointerMap(zone()));
564   return instr;
565 }
566 
567 
TempRegister()568 LUnallocated* LChunkBuilder::TempRegister() {
569   LUnallocated* operand =
570       new(zone()) LUnallocated(LUnallocated::MUST_HAVE_REGISTER);
571   int vreg = allocator_->GetVirtualRegister();
572   if (!allocator_->AllocationOk()) {
573     Abort(kOutOfVirtualRegistersWhileTryingToAllocateTempRegister);
574     vreg = 0;
575   }
576   operand->set_virtual_register(vreg);
577   return operand;
578 }
579 
580 
TempDoubleRegister()581 LUnallocated* LChunkBuilder::TempDoubleRegister() {
582   LUnallocated* operand =
583       new(zone()) LUnallocated(LUnallocated::MUST_HAVE_DOUBLE_REGISTER);
584   int vreg = allocator_->GetVirtualRegister();
585   if (!allocator_->AllocationOk()) {
586     Abort(kOutOfVirtualRegistersWhileTryingToAllocateTempRegister);
587     vreg = 0;
588   }
589   operand->set_virtual_register(vreg);
590   return operand;
591 }
592 
593 
FixedTemp(Register reg)594 LOperand* LChunkBuilder::FixedTemp(Register reg) {
595   LUnallocated* operand = ToUnallocated(reg);
596   DCHECK(operand->HasFixedPolicy());
597   return operand;
598 }
599 
600 
FixedTemp(DoubleRegister reg)601 LOperand* LChunkBuilder::FixedTemp(DoubleRegister reg) {
602   LUnallocated* operand = ToUnallocated(reg);
603   DCHECK(operand->HasFixedPolicy());
604   return operand;
605 }
606 
607 
DoBlockEntry(HBlockEntry * instr)608 LInstruction* LChunkBuilder::DoBlockEntry(HBlockEntry* instr) {
609   return new(zone()) LLabel(instr->block());
610 }
611 
612 
DoDummyUse(HDummyUse * instr)613 LInstruction* LChunkBuilder::DoDummyUse(HDummyUse* instr) {
614   return DefineAsRegister(new(zone()) LDummyUse(UseAny(instr->value())));
615 }
616 
617 
DoEnvironmentMarker(HEnvironmentMarker * instr)618 LInstruction* LChunkBuilder::DoEnvironmentMarker(HEnvironmentMarker* instr) {
619   UNREACHABLE();
620   return NULL;
621 }
622 
623 
DoDeoptimize(HDeoptimize * instr)624 LInstruction* LChunkBuilder::DoDeoptimize(HDeoptimize* instr) {
625   return AssignEnvironment(new(zone()) LDeoptimize);
626 }
627 
628 
DoShift(Token::Value op,HBitwiseBinaryOperation * instr)629 LInstruction* LChunkBuilder::DoShift(Token::Value op,
630                                      HBitwiseBinaryOperation* instr) {
631   if (instr->representation().IsSmiOrInteger32()) {
632     DCHECK(instr->left()->representation().Equals(instr->representation()));
633     DCHECK(instr->right()->representation().Equals(instr->representation()));
634     LOperand* left = UseRegisterAtStart(instr->left());
635 
636     HValue* right_value = instr->right();
637     LOperand* right = NULL;
638     int constant_value = 0;
639     bool does_deopt = false;
640     if (right_value->IsConstant()) {
641       HConstant* constant = HConstant::cast(right_value);
642       right = chunk_->DefineConstantOperand(constant);
643       constant_value = constant->Integer32Value() & 0x1f;
644       // Left shifts can deoptimize if we shift by > 0 and the result cannot be
645       // truncated to smi.
646       if (instr->representation().IsSmi() && constant_value > 0) {
647         does_deopt = !instr->CheckUsesForFlag(HValue::kTruncatingToSmi);
648       }
649     } else {
650       right = UseRegisterAtStart(right_value);
651     }
652 
653     // Shift operations can only deoptimize if we do a logical shift
654     // by 0 and the result cannot be truncated to int32.
655     if (op == Token::SHR && constant_value == 0) {
656       does_deopt = !instr->CheckFlag(HInstruction::kUint32);
657     }
658 
659     LInstruction* result =
660         DefineAsRegister(new(zone()) LShiftI(op, left, right, does_deopt));
661     return does_deopt ? AssignEnvironment(result) : result;
662   } else {
663     return DoArithmeticT(op, instr);
664   }
665 }
666 
667 
DoArithmeticD(Token::Value op,HArithmeticBinaryOperation * instr)668 LInstruction* LChunkBuilder::DoArithmeticD(Token::Value op,
669                                            HArithmeticBinaryOperation* instr) {
670   DCHECK(instr->representation().IsDouble());
671   DCHECK(instr->left()->representation().IsDouble());
672   DCHECK(instr->right()->representation().IsDouble());
673   if (op == Token::MOD) {
674     LOperand* left = UseFixedDouble(instr->left(), f2);
675     LOperand* right = UseFixedDouble(instr->right(), f4);
676     LArithmeticD* result = new(zone()) LArithmeticD(op, left, right);
677     // We call a C function for double modulo. It can't trigger a GC. We need
678     // to use fixed result register for the call.
679     // TODO(fschneider): Allow any register as input registers.
680     return MarkAsCall(DefineFixedDouble(result, f2), instr);
681   } else {
682     LOperand* left = UseRegisterAtStart(instr->left());
683     LOperand* right = UseRegisterAtStart(instr->right());
684     LArithmeticD* result = new(zone()) LArithmeticD(op, left, right);
685     return DefineAsRegister(result);
686   }
687 }
688 
689 
DoArithmeticT(Token::Value op,HBinaryOperation * instr)690 LInstruction* LChunkBuilder::DoArithmeticT(Token::Value op,
691                                            HBinaryOperation* instr) {
692   HValue* left = instr->left();
693   HValue* right = instr->right();
694   DCHECK(left->representation().IsTagged());
695   DCHECK(right->representation().IsTagged());
696   LOperand* context = UseFixed(instr->context(), cp);
697   LOperand* left_operand = UseFixed(left, a1);
698   LOperand* right_operand = UseFixed(right, a0);
699   LArithmeticT* result =
700       new(zone()) LArithmeticT(op, context, left_operand, right_operand);
701   return MarkAsCall(DefineFixed(result, v0), instr);
702 }
703 
704 
DoBasicBlock(HBasicBlock * block,HBasicBlock * next_block)705 void LChunkBuilder::DoBasicBlock(HBasicBlock* block, HBasicBlock* next_block) {
706   DCHECK(is_building());
707   current_block_ = block;
708   next_block_ = next_block;
709   if (block->IsStartBlock()) {
710     block->UpdateEnvironment(graph_->start_environment());
711     argument_count_ = 0;
712   } else if (block->predecessors()->length() == 1) {
713     // We have a single predecessor => copy environment and outgoing
714     // argument count from the predecessor.
715     DCHECK(block->phis()->length() == 0);
716     HBasicBlock* pred = block->predecessors()->at(0);
717     HEnvironment* last_environment = pred->last_environment();
718     DCHECK(last_environment != NULL);
719     // Only copy the environment, if it is later used again.
720     if (pred->end()->SecondSuccessor() == NULL) {
721       DCHECK(pred->end()->FirstSuccessor() == block);
722     } else {
723       if (pred->end()->FirstSuccessor()->block_id() > block->block_id() ||
724           pred->end()->SecondSuccessor()->block_id() > block->block_id()) {
725         last_environment = last_environment->Copy();
726       }
727     }
728     block->UpdateEnvironment(last_environment);
729     DCHECK(pred->argument_count() >= 0);
730     argument_count_ = pred->argument_count();
731   } else {
732     // We are at a state join => process phis.
733     HBasicBlock* pred = block->predecessors()->at(0);
734     // No need to copy the environment, it cannot be used later.
735     HEnvironment* last_environment = pred->last_environment();
736     for (int i = 0; i < block->phis()->length(); ++i) {
737       HPhi* phi = block->phis()->at(i);
738       if (phi->HasMergedIndex()) {
739         last_environment->SetValueAt(phi->merged_index(), phi);
740       }
741     }
742     for (int i = 0; i < block->deleted_phis()->length(); ++i) {
743       if (block->deleted_phis()->at(i) < last_environment->length()) {
744         last_environment->SetValueAt(block->deleted_phis()->at(i),
745                                      graph_->GetConstantUndefined());
746       }
747     }
748     block->UpdateEnvironment(last_environment);
749     // Pick up the outgoing argument count of one of the predecessors.
750     argument_count_ = pred->argument_count();
751   }
752   HInstruction* current = block->first();
753   int start = chunk_->instructions()->length();
754   while (current != NULL && !is_aborted()) {
755     // Code for constants in registers is generated lazily.
756     if (!current->EmitAtUses()) {
757       VisitInstruction(current);
758     }
759     current = current->next();
760   }
761   int end = chunk_->instructions()->length() - 1;
762   if (end >= start) {
763     block->set_first_instruction_index(start);
764     block->set_last_instruction_index(end);
765   }
766   block->set_argument_count(argument_count_);
767   next_block_ = NULL;
768   current_block_ = NULL;
769 }
770 
771 
VisitInstruction(HInstruction * current)772 void LChunkBuilder::VisitInstruction(HInstruction* current) {
773   HInstruction* old_current = current_instruction_;
774   current_instruction_ = current;
775 
776   LInstruction* instr = NULL;
777   if (current->CanReplaceWithDummyUses()) {
778     if (current->OperandCount() == 0) {
779       instr = DefineAsRegister(new(zone()) LDummy());
780     } else {
781       DCHECK(!current->OperandAt(0)->IsControlInstruction());
782       instr = DefineAsRegister(new(zone())
783           LDummyUse(UseAny(current->OperandAt(0))));
784     }
785     for (int i = 1; i < current->OperandCount(); ++i) {
786       if (current->OperandAt(i)->IsControlInstruction()) continue;
787       LInstruction* dummy =
788           new(zone()) LDummyUse(UseAny(current->OperandAt(i)));
789       dummy->set_hydrogen_value(current);
790       chunk_->AddInstruction(dummy, current_block_);
791     }
792   } else {
793     HBasicBlock* successor;
794     if (current->IsControlInstruction() &&
795         HControlInstruction::cast(current)->KnownSuccessorBlock(&successor) &&
796         successor != NULL) {
797       instr = new(zone()) LGoto(successor);
798     } else {
799       instr = current->CompileToLithium(this);
800     }
801   }
802 
803   argument_count_ += current->argument_delta();
804   DCHECK(argument_count_ >= 0);
805 
806   if (instr != NULL) {
807     AddInstruction(instr, current);
808   }
809 
810   current_instruction_ = old_current;
811 }
812 
813 
AddInstruction(LInstruction * instr,HInstruction * hydrogen_val)814 void LChunkBuilder::AddInstruction(LInstruction* instr,
815                                    HInstruction* hydrogen_val) {
816 // Associate the hydrogen instruction first, since we may need it for
817   // the ClobbersRegisters() or ClobbersDoubleRegisters() calls below.
818   instr->set_hydrogen_value(hydrogen_val);
819 
820 #if DEBUG
821   // Make sure that the lithium instruction has either no fixed register
822   // constraints in temps or the result OR no uses that are only used at
823   // start. If this invariant doesn't hold, the register allocator can decide
824   // to insert a split of a range immediately before the instruction due to an
825   // already allocated register needing to be used for the instruction's fixed
826   // register constraint. In this case, The register allocator won't see an
827   // interference between the split child and the use-at-start (it would if
828   // the it was just a plain use), so it is free to move the split child into
829   // the same register that is used for the use-at-start.
830   // See https://code.google.com/p/chromium/issues/detail?id=201590
831   if (!(instr->ClobbersRegisters() &&
832         instr->ClobbersDoubleRegisters(isolate()))) {
833     int fixed = 0;
834     int used_at_start = 0;
835     for (UseIterator it(instr); !it.Done(); it.Advance()) {
836       LUnallocated* operand = LUnallocated::cast(it.Current());
837       if (operand->IsUsedAtStart()) ++used_at_start;
838     }
839     if (instr->Output() != NULL) {
840       if (LUnallocated::cast(instr->Output())->HasFixedPolicy()) ++fixed;
841     }
842     for (TempIterator it(instr); !it.Done(); it.Advance()) {
843       LUnallocated* operand = LUnallocated::cast(it.Current());
844       if (operand->HasFixedPolicy()) ++fixed;
845     }
846     DCHECK(fixed == 0 || used_at_start == 0);
847   }
848 #endif
849 
850   if (FLAG_stress_pointer_maps && !instr->HasPointerMap()) {
851     instr = AssignPointerMap(instr);
852   }
853   if (FLAG_stress_environments && !instr->HasEnvironment()) {
854     instr = AssignEnvironment(instr);
855   }
856   chunk_->AddInstruction(instr, current_block_);
857 
858   CreateLazyBailoutForCall(current_block_, instr, hydrogen_val);
859 }
860 
861 
DoPrologue(HPrologue * instr)862 LInstruction* LChunkBuilder::DoPrologue(HPrologue* instr) {
863   LInstruction* result = new (zone()) LPrologue();
864   if (info_->scope()->NeedsContext()) {
865     result = MarkAsCall(result, instr);
866   }
867   return result;
868 }
869 
870 
DoGoto(HGoto * instr)871 LInstruction* LChunkBuilder::DoGoto(HGoto* instr) {
872   return new(zone()) LGoto(instr->FirstSuccessor());
873 }
874 
875 
DoBranch(HBranch * instr)876 LInstruction* LChunkBuilder::DoBranch(HBranch* instr) {
877   HValue* value = instr->value();
878   Representation r = value->representation();
879   HType type = value->type();
880   ToBooleanHints expected = instr->expected_input_types();
881   if (expected == ToBooleanHint::kNone) expected = ToBooleanHint::kAny;
882 
883   bool easy_case = !r.IsTagged() || type.IsBoolean() || type.IsSmi() ||
884       type.IsJSArray() || type.IsHeapNumber() || type.IsString();
885   LInstruction* branch = new(zone()) LBranch(UseRegister(value));
886   if (!easy_case && ((!(expected & ToBooleanHint::kSmallInteger) &&
887                       (expected & ToBooleanHint::kNeedsMap)) ||
888                      expected != ToBooleanHint::kAny)) {
889     branch = AssignEnvironment(branch);
890   }
891   return branch;
892 }
893 
894 
DoCompareMap(HCompareMap * instr)895 LInstruction* LChunkBuilder::DoCompareMap(HCompareMap* instr) {
896   DCHECK(instr->value()->representation().IsTagged());
897   LOperand* value = UseRegisterAtStart(instr->value());
898   LOperand* temp = TempRegister();
899   return new(zone()) LCmpMapAndBranch(value, temp);
900 }
901 
902 
DoArgumentsLength(HArgumentsLength * length)903 LInstruction* LChunkBuilder::DoArgumentsLength(HArgumentsLength* length) {
904   info()->MarkAsRequiresFrame();
905   return DefineAsRegister(
906       new(zone()) LArgumentsLength(UseRegister(length->value())));
907 }
908 
909 
DoArgumentsElements(HArgumentsElements * elems)910 LInstruction* LChunkBuilder::DoArgumentsElements(HArgumentsElements* elems) {
911   info()->MarkAsRequiresFrame();
912   return DefineAsRegister(new(zone()) LArgumentsElements);
913 }
914 
915 
DoHasInPrototypeChainAndBranch(HHasInPrototypeChainAndBranch * instr)916 LInstruction* LChunkBuilder::DoHasInPrototypeChainAndBranch(
917     HHasInPrototypeChainAndBranch* instr) {
918   LOperand* object = UseRegister(instr->object());
919   LOperand* prototype = UseRegister(instr->prototype());
920   LHasInPrototypeChainAndBranch* result =
921       new (zone()) LHasInPrototypeChainAndBranch(object, prototype);
922   return AssignEnvironment(result);
923 }
924 
925 
DoWrapReceiver(HWrapReceiver * instr)926 LInstruction* LChunkBuilder::DoWrapReceiver(HWrapReceiver* instr) {
927   LOperand* receiver = UseRegisterAtStart(instr->receiver());
928   LOperand* function = UseRegisterAtStart(instr->function());
929   LWrapReceiver* result = new(zone()) LWrapReceiver(receiver, function);
930   return AssignEnvironment(DefineAsRegister(result));
931 }
932 
933 
DoApplyArguments(HApplyArguments * instr)934 LInstruction* LChunkBuilder::DoApplyArguments(HApplyArguments* instr) {
935   LOperand* function = UseFixed(instr->function(), a1);
936   LOperand* receiver = UseFixed(instr->receiver(), a0);
937   LOperand* length = UseFixed(instr->length(), a2);
938   LOperand* elements = UseFixed(instr->elements(), a3);
939   LApplyArguments* result = new(zone()) LApplyArguments(function,
940                                                         receiver,
941                                                         length,
942                                                         elements);
943   return MarkAsCall(DefineFixed(result, v0), instr, CAN_DEOPTIMIZE_EAGERLY);
944 }
945 
946 
DoPushArguments(HPushArguments * instr)947 LInstruction* LChunkBuilder::DoPushArguments(HPushArguments* instr) {
948   int argc = instr->OperandCount();
949   for (int i = 0; i < argc; ++i) {
950     LOperand* argument = Use(instr->argument(i));
951     AddInstruction(new(zone()) LPushArgument(argument), instr);
952   }
953   return NULL;
954 }
955 
956 
DoStoreCodeEntry(HStoreCodeEntry * store_code_entry)957 LInstruction* LChunkBuilder::DoStoreCodeEntry(
958     HStoreCodeEntry* store_code_entry) {
959   LOperand* function = UseRegister(store_code_entry->function());
960   LOperand* code_object = UseTempRegister(store_code_entry->code_object());
961   return new(zone()) LStoreCodeEntry(function, code_object);
962 }
963 
964 
DoInnerAllocatedObject(HInnerAllocatedObject * instr)965 LInstruction* LChunkBuilder::DoInnerAllocatedObject(
966     HInnerAllocatedObject* instr) {
967   LOperand* base_object = UseRegisterAtStart(instr->base_object());
968   LOperand* offset = UseRegisterOrConstantAtStart(instr->offset());
969   return DefineAsRegister(
970       new(zone()) LInnerAllocatedObject(base_object, offset));
971 }
972 
973 
DoThisFunction(HThisFunction * instr)974 LInstruction* LChunkBuilder::DoThisFunction(HThisFunction* instr) {
975   return instr->HasNoUses()
976       ? NULL
977       : DefineAsRegister(new(zone()) LThisFunction);
978 }
979 
980 
DoContext(HContext * instr)981 LInstruction* LChunkBuilder::DoContext(HContext* instr) {
982   if (instr->HasNoUses()) return NULL;
983 
984   if (info()->IsStub()) {
985     return DefineFixed(new(zone()) LContext, cp);
986   }
987 
988   return DefineAsRegister(new(zone()) LContext);
989 }
990 
991 
DoDeclareGlobals(HDeclareGlobals * instr)992 LInstruction* LChunkBuilder::DoDeclareGlobals(HDeclareGlobals* instr) {
993   LOperand* context = UseFixed(instr->context(), cp);
994   return MarkAsCall(new(zone()) LDeclareGlobals(context), instr);
995 }
996 
997 
DoCallWithDescriptor(HCallWithDescriptor * instr)998 LInstruction* LChunkBuilder::DoCallWithDescriptor(
999     HCallWithDescriptor* instr) {
1000   CallInterfaceDescriptor descriptor = instr->descriptor();
1001   DCHECK_EQ(descriptor.GetParameterCount() +
1002                 LCallWithDescriptor::kImplicitRegisterParameterCount,
1003             instr->OperandCount());
1004 
1005   LOperand* target = UseRegisterOrConstantAtStart(instr->target());
1006   ZoneList<LOperand*> ops(instr->OperandCount(), zone());
1007   // Target
1008   ops.Add(target, zone());
1009   // Context
1010   LOperand* op = UseFixed(instr->OperandAt(1), cp);
1011   ops.Add(op, zone());
1012   // Load register parameters.
1013   int i = 0;
1014   for (; i < descriptor.GetRegisterParameterCount(); i++) {
1015     op = UseFixed(instr->OperandAt(
1016                       i + LCallWithDescriptor::kImplicitRegisterParameterCount),
1017                   descriptor.GetRegisterParameter(i));
1018     ops.Add(op, zone());
1019   }
1020   // Push stack parameters.
1021   for (; i < descriptor.GetParameterCount(); i++) {
1022     op = UseAny(instr->OperandAt(
1023         i + LCallWithDescriptor::kImplicitRegisterParameterCount));
1024     AddInstruction(new (zone()) LPushArgument(op), instr);
1025   }
1026 
1027   LCallWithDescriptor* result = new(zone()) LCallWithDescriptor(
1028       descriptor, ops, zone());
1029   if (instr->syntactic_tail_call_mode() == TailCallMode::kAllow) {
1030     result->MarkAsSyntacticTailCall();
1031   }
1032   return MarkAsCall(DefineFixed(result, v0), instr);
1033 }
1034 
1035 
DoInvokeFunction(HInvokeFunction * instr)1036 LInstruction* LChunkBuilder::DoInvokeFunction(HInvokeFunction* instr) {
1037   LOperand* context = UseFixed(instr->context(), cp);
1038   LOperand* function = UseFixed(instr->function(), a1);
1039   LInvokeFunction* result = new(zone()) LInvokeFunction(context, function);
1040   if (instr->syntactic_tail_call_mode() == TailCallMode::kAllow) {
1041     result->MarkAsSyntacticTailCall();
1042   }
1043   return MarkAsCall(DefineFixed(result, v0), instr, CANNOT_DEOPTIMIZE_EAGERLY);
1044 }
1045 
1046 
DoUnaryMathOperation(HUnaryMathOperation * instr)1047 LInstruction* LChunkBuilder::DoUnaryMathOperation(HUnaryMathOperation* instr) {
1048   switch (instr->op()) {
1049     case kMathFloor:
1050       return DoMathFloor(instr);
1051     case kMathRound:
1052       return DoMathRound(instr);
1053     case kMathFround:
1054       return DoMathFround(instr);
1055     case kMathAbs:
1056       return DoMathAbs(instr);
1057     case kMathLog:
1058       return DoMathLog(instr);
1059     case kMathCos:
1060       return DoMathCos(instr);
1061     case kMathSin:
1062       return DoMathSin(instr);
1063     case kMathExp:
1064       return DoMathExp(instr);
1065     case kMathSqrt:
1066       return DoMathSqrt(instr);
1067     case kMathPowHalf:
1068       return DoMathPowHalf(instr);
1069     case kMathClz32:
1070       return DoMathClz32(instr);
1071     default:
1072       UNREACHABLE();
1073       return NULL;
1074   }
1075 }
1076 
1077 
DoMathLog(HUnaryMathOperation * instr)1078 LInstruction* LChunkBuilder::DoMathLog(HUnaryMathOperation* instr) {
1079   DCHECK(instr->representation().IsDouble());
1080   DCHECK(instr->value()->representation().IsDouble());
1081   LOperand* input = UseFixedDouble(instr->value(), f4);
1082   return MarkAsCall(DefineFixedDouble(new(zone()) LMathLog(input), f4), instr);
1083 }
1084 
1085 
DoMathClz32(HUnaryMathOperation * instr)1086 LInstruction* LChunkBuilder::DoMathClz32(HUnaryMathOperation* instr) {
1087   LOperand* input = UseRegisterAtStart(instr->value());
1088   LMathClz32* result = new(zone()) LMathClz32(input);
1089   return DefineAsRegister(result);
1090 }
1091 
DoMathCos(HUnaryMathOperation * instr)1092 LInstruction* LChunkBuilder::DoMathCos(HUnaryMathOperation* instr) {
1093   DCHECK(instr->representation().IsDouble());
1094   DCHECK(instr->value()->representation().IsDouble());
1095   LOperand* input = UseFixedDouble(instr->value(), f4);
1096   return MarkAsCall(DefineFixedDouble(new (zone()) LMathCos(input), f4), instr);
1097 }
1098 
DoMathSin(HUnaryMathOperation * instr)1099 LInstruction* LChunkBuilder::DoMathSin(HUnaryMathOperation* instr) {
1100   DCHECK(instr->representation().IsDouble());
1101   DCHECK(instr->value()->representation().IsDouble());
1102   LOperand* input = UseFixedDouble(instr->value(), f4);
1103   return MarkAsCall(DefineFixedDouble(new (zone()) LMathSin(input), f4), instr);
1104 }
1105 
DoMathExp(HUnaryMathOperation * instr)1106 LInstruction* LChunkBuilder::DoMathExp(HUnaryMathOperation* instr) {
1107   DCHECK(instr->representation().IsDouble());
1108   DCHECK(instr->value()->representation().IsDouble());
1109   LOperand* input = UseFixedDouble(instr->value(), f4);
1110   return MarkAsCall(DefineFixedDouble(new (zone()) LMathExp(input), f4), instr);
1111 }
1112 
1113 
DoMathPowHalf(HUnaryMathOperation * instr)1114 LInstruction* LChunkBuilder::DoMathPowHalf(HUnaryMathOperation* instr) {
1115   // Input cannot be the same as the result, see LCodeGen::DoMathPowHalf.
1116   LOperand* input = UseFixedDouble(instr->value(), f8);
1117   LOperand* temp = TempDoubleRegister();
1118   LMathPowHalf* result = new(zone()) LMathPowHalf(input, temp);
1119   return DefineFixedDouble(result, f4);
1120 }
1121 
1122 
DoMathFround(HUnaryMathOperation * instr)1123 LInstruction* LChunkBuilder::DoMathFround(HUnaryMathOperation* instr) {
1124   LOperand* input = UseRegister(instr->value());
1125   LMathFround* result = new (zone()) LMathFround(input);
1126   return DefineAsRegister(result);
1127 }
1128 
1129 
DoMathAbs(HUnaryMathOperation * instr)1130 LInstruction* LChunkBuilder::DoMathAbs(HUnaryMathOperation* instr) {
1131   Representation r = instr->value()->representation();
1132   LOperand* context = (r.IsDouble() || r.IsSmiOrInteger32())
1133       ? NULL
1134       : UseFixed(instr->context(), cp);
1135   LOperand* input = UseRegister(instr->value());
1136   LInstruction* result =
1137       DefineAsRegister(new(zone()) LMathAbs(context, input));
1138   if (!r.IsDouble() && !r.IsSmiOrInteger32()) result = AssignPointerMap(result);
1139   if (!r.IsDouble()) result = AssignEnvironment(result);
1140   return result;
1141 }
1142 
1143 
DoMathFloor(HUnaryMathOperation * instr)1144 LInstruction* LChunkBuilder::DoMathFloor(HUnaryMathOperation* instr) {
1145   LOperand* input = UseRegister(instr->value());
1146   LOperand* temp = TempRegister();
1147   LMathFloor* result = new(zone()) LMathFloor(input, temp);
1148   return AssignEnvironment(AssignPointerMap(DefineAsRegister(result)));
1149 }
1150 
1151 
DoMathSqrt(HUnaryMathOperation * instr)1152 LInstruction* LChunkBuilder::DoMathSqrt(HUnaryMathOperation* instr) {
1153   LOperand* input = UseRegister(instr->value());
1154   LMathSqrt* result = new(zone()) LMathSqrt(input);
1155   return DefineAsRegister(result);
1156 }
1157 
1158 
DoMathRound(HUnaryMathOperation * instr)1159 LInstruction* LChunkBuilder::DoMathRound(HUnaryMathOperation* instr) {
1160   LOperand* input = UseRegister(instr->value());
1161   LOperand* temp = TempDoubleRegister();
1162   LMathRound* result = new(zone()) LMathRound(input, temp);
1163   return AssignEnvironment(DefineAsRegister(result));
1164 }
1165 
1166 
DoCallNewArray(HCallNewArray * instr)1167 LInstruction* LChunkBuilder::DoCallNewArray(HCallNewArray* instr) {
1168   LOperand* context = UseFixed(instr->context(), cp);
1169   LOperand* constructor = UseFixed(instr->constructor(), a1);
1170   LCallNewArray* result = new(zone()) LCallNewArray(context, constructor);
1171   return MarkAsCall(DefineFixed(result, v0), instr);
1172 }
1173 
1174 
DoCallRuntime(HCallRuntime * instr)1175 LInstruction* LChunkBuilder::DoCallRuntime(HCallRuntime* instr) {
1176   LOperand* context = UseFixed(instr->context(), cp);
1177   return MarkAsCall(DefineFixed(new(zone()) LCallRuntime(context), v0), instr);
1178 }
1179 
1180 
DoRor(HRor * instr)1181 LInstruction* LChunkBuilder::DoRor(HRor* instr) {
1182   return DoShift(Token::ROR, instr);
1183 }
1184 
1185 
DoShr(HShr * instr)1186 LInstruction* LChunkBuilder::DoShr(HShr* instr) {
1187   return DoShift(Token::SHR, instr);
1188 }
1189 
1190 
DoSar(HSar * instr)1191 LInstruction* LChunkBuilder::DoSar(HSar* instr) {
1192   return DoShift(Token::SAR, instr);
1193 }
1194 
1195 
DoShl(HShl * instr)1196 LInstruction* LChunkBuilder::DoShl(HShl* instr) {
1197   return DoShift(Token::SHL, instr);
1198 }
1199 
1200 
DoBitwise(HBitwise * instr)1201 LInstruction* LChunkBuilder::DoBitwise(HBitwise* instr) {
1202   if (instr->representation().IsSmiOrInteger32()) {
1203     DCHECK(instr->left()->representation().Equals(instr->representation()));
1204     DCHECK(instr->right()->representation().Equals(instr->representation()));
1205     DCHECK(instr->CheckFlag(HValue::kTruncatingToInt32));
1206 
1207     LOperand* left = UseRegisterAtStart(instr->BetterLeftOperand());
1208     LOperand* right = UseOrConstantAtStart(instr->BetterRightOperand());
1209     return DefineAsRegister(new(zone()) LBitI(left, right));
1210   } else {
1211     return DoArithmeticT(instr->op(), instr);
1212   }
1213 }
1214 
1215 
DoDivByPowerOf2I(HDiv * instr)1216 LInstruction* LChunkBuilder::DoDivByPowerOf2I(HDiv* instr) {
1217   DCHECK(instr->representation().IsSmiOrInteger32());
1218   DCHECK(instr->left()->representation().Equals(instr->representation()));
1219   DCHECK(instr->right()->representation().Equals(instr->representation()));
1220   LOperand* dividend = UseRegister(instr->left());
1221   int32_t divisor = instr->right()->GetInteger32Constant();
1222   LInstruction* result = DefineAsRegister(new(zone()) LDivByPowerOf2I(
1223           dividend, divisor));
1224   if ((instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0) ||
1225       (instr->CheckFlag(HValue::kCanOverflow) && divisor == -1) ||
1226       (!instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32) &&
1227       divisor != 1 && divisor != -1)) {
1228     result = AssignEnvironment(result);
1229   }
1230   return result;
1231 }
1232 
1233 
DoDivByConstI(HDiv * instr)1234 LInstruction* LChunkBuilder::DoDivByConstI(HDiv* instr) {
1235   DCHECK(instr->representation().IsInteger32());
1236   DCHECK(instr->left()->representation().Equals(instr->representation()));
1237   DCHECK(instr->right()->representation().Equals(instr->representation()));
1238   LOperand* dividend = UseRegister(instr->left());
1239   int32_t divisor = instr->right()->GetInteger32Constant();
1240   LInstruction* result = DefineAsRegister(new(zone()) LDivByConstI(
1241           dividend, divisor));
1242   if (divisor == 0 ||
1243       (instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0) ||
1244       !instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32)) {
1245     result = AssignEnvironment(result);
1246   }
1247   return result;
1248 }
1249 
1250 
DoDivI(HDiv * instr)1251 LInstruction* LChunkBuilder::DoDivI(HDiv* instr) {
1252   DCHECK(instr->representation().IsSmiOrInteger32());
1253   DCHECK(instr->left()->representation().Equals(instr->representation()));
1254   DCHECK(instr->right()->representation().Equals(instr->representation()));
1255   LOperand* dividend = UseRegister(instr->left());
1256   LOperand* divisor = UseRegister(instr->right());
1257   LOperand* temp = instr->CheckFlag(HInstruction::kAllUsesTruncatingToInt32)
1258     ? NULL : TempRegister();
1259   LInstruction* result =
1260       DefineAsRegister(new(zone()) LDivI(dividend, divisor, temp));
1261   if (instr->CheckFlag(HValue::kCanBeDivByZero) ||
1262       instr->CheckFlag(HValue::kBailoutOnMinusZero) ||
1263       (instr->CheckFlag(HValue::kCanOverflow) &&
1264        !instr->CheckFlag(HValue::kAllUsesTruncatingToInt32)) ||
1265       (!instr->IsMathFloorOfDiv() &&
1266        !instr->CheckFlag(HValue::kAllUsesTruncatingToInt32))) {
1267     result = AssignEnvironment(result);
1268   }
1269   return result;
1270 }
1271 
1272 
DoDiv(HDiv * instr)1273 LInstruction* LChunkBuilder::DoDiv(HDiv* instr) {
1274   if (instr->representation().IsSmiOrInteger32()) {
1275     if (instr->RightIsPowerOf2()) {
1276       return DoDivByPowerOf2I(instr);
1277     } else if (instr->right()->IsConstant()) {
1278       return DoDivByConstI(instr);
1279     } else {
1280       return DoDivI(instr);
1281     }
1282   } else if (instr->representation().IsDouble()) {
1283     return DoArithmeticD(Token::DIV, instr);
1284   } else {
1285     return DoArithmeticT(Token::DIV, instr);
1286   }
1287 }
1288 
1289 
DoFlooringDivByPowerOf2I(HMathFloorOfDiv * instr)1290 LInstruction* LChunkBuilder::DoFlooringDivByPowerOf2I(HMathFloorOfDiv* instr) {
1291   LOperand* dividend = UseRegisterAtStart(instr->left());
1292   int32_t divisor = instr->right()->GetInteger32Constant();
1293   LInstruction* result = DefineAsRegister(new(zone()) LFlooringDivByPowerOf2I(
1294           dividend, divisor));
1295   if ((instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0) ||
1296       (instr->CheckFlag(HValue::kLeftCanBeMinInt) && divisor == -1)) {
1297     result = AssignEnvironment(result);
1298   }
1299   return result;
1300 }
1301 
1302 
DoFlooringDivByConstI(HMathFloorOfDiv * instr)1303 LInstruction* LChunkBuilder::DoFlooringDivByConstI(HMathFloorOfDiv* instr) {
1304   DCHECK(instr->representation().IsInteger32());
1305   DCHECK(instr->left()->representation().Equals(instr->representation()));
1306   DCHECK(instr->right()->representation().Equals(instr->representation()));
1307   LOperand* dividend = UseRegister(instr->left());
1308   int32_t divisor = instr->right()->GetInteger32Constant();
1309   LOperand* temp =
1310       ((divisor > 0 && !instr->CheckFlag(HValue::kLeftCanBeNegative)) ||
1311        (divisor < 0 && !instr->CheckFlag(HValue::kLeftCanBePositive))) ?
1312       NULL : TempRegister();
1313   LInstruction* result = DefineAsRegister(
1314       new(zone()) LFlooringDivByConstI(dividend, divisor, temp));
1315   if (divisor == 0 ||
1316       (instr->CheckFlag(HValue::kBailoutOnMinusZero) && divisor < 0)) {
1317     result = AssignEnvironment(result);
1318   }
1319   return result;
1320 }
1321 
1322 
DoFlooringDivI(HMathFloorOfDiv * instr)1323 LInstruction* LChunkBuilder::DoFlooringDivI(HMathFloorOfDiv* instr) {
1324   DCHECK(instr->representation().IsSmiOrInteger32());
1325   DCHECK(instr->left()->representation().Equals(instr->representation()));
1326   DCHECK(instr->right()->representation().Equals(instr->representation()));
1327   LOperand* dividend = UseRegister(instr->left());
1328   LOperand* divisor = UseRegister(instr->right());
1329   LInstruction* result =
1330       DefineAsRegister(new (zone()) LFlooringDivI(dividend, divisor));
1331   if (instr->CheckFlag(HValue::kCanBeDivByZero) ||
1332       instr->CheckFlag(HValue::kBailoutOnMinusZero) ||
1333       (instr->CheckFlag(HValue::kCanOverflow))) {
1334     result = AssignEnvironment(result);
1335   }
1336   return result;
1337 }
1338 
1339 
DoMathFloorOfDiv(HMathFloorOfDiv * instr)1340 LInstruction* LChunkBuilder::DoMathFloorOfDiv(HMathFloorOfDiv* instr) {
1341   if (instr->RightIsPowerOf2()) {
1342     return DoFlooringDivByPowerOf2I(instr);
1343   } else if (instr->right()->IsConstant()) {
1344     return DoFlooringDivByConstI(instr);
1345   } else {
1346     return DoFlooringDivI(instr);
1347   }
1348 }
1349 
1350 
DoModByPowerOf2I(HMod * instr)1351 LInstruction* LChunkBuilder::DoModByPowerOf2I(HMod* instr) {
1352   DCHECK(instr->representation().IsSmiOrInteger32());
1353   DCHECK(instr->left()->representation().Equals(instr->representation()));
1354   DCHECK(instr->right()->representation().Equals(instr->representation()));
1355   LOperand* dividend = UseRegisterAtStart(instr->left());
1356   int32_t divisor = instr->right()->GetInteger32Constant();
1357   LInstruction* result = DefineSameAsFirst(new(zone()) LModByPowerOf2I(
1358           dividend, divisor));
1359   if (instr->CheckFlag(HValue::kLeftCanBeNegative) &&
1360       instr->CheckFlag(HValue::kBailoutOnMinusZero)) {
1361     result = AssignEnvironment(result);
1362   }
1363   return result;
1364 }
1365 
1366 
DoModByConstI(HMod * instr)1367 LInstruction* LChunkBuilder::DoModByConstI(HMod* instr) {
1368   DCHECK(instr->representation().IsSmiOrInteger32());
1369   DCHECK(instr->left()->representation().Equals(instr->representation()));
1370   DCHECK(instr->right()->representation().Equals(instr->representation()));
1371   LOperand* dividend = UseRegister(instr->left());
1372   int32_t divisor = instr->right()->GetInteger32Constant();
1373   LInstruction* result = DefineAsRegister(new(zone()) LModByConstI(
1374           dividend, divisor));
1375   if (divisor == 0 || instr->CheckFlag(HValue::kBailoutOnMinusZero)) {
1376     result = AssignEnvironment(result);
1377   }
1378   return result;
1379 }
1380 
1381 
DoModI(HMod * instr)1382 LInstruction* LChunkBuilder::DoModI(HMod* instr) {
1383   DCHECK(instr->representation().IsSmiOrInteger32());
1384   DCHECK(instr->left()->representation().Equals(instr->representation()));
1385   DCHECK(instr->right()->representation().Equals(instr->representation()));
1386   LOperand* dividend = UseRegister(instr->left());
1387   LOperand* divisor = UseRegister(instr->right());
1388   LInstruction* result = DefineAsRegister(new(zone()) LModI(
1389       dividend, divisor));
1390   if (instr->CheckFlag(HValue::kCanBeDivByZero) ||
1391       instr->CheckFlag(HValue::kBailoutOnMinusZero)) {
1392     result = AssignEnvironment(result);
1393   }
1394   return result;
1395 }
1396 
1397 
DoMod(HMod * instr)1398 LInstruction* LChunkBuilder::DoMod(HMod* instr) {
1399   if (instr->representation().IsSmiOrInteger32()) {
1400     return instr->RightIsPowerOf2() ? DoModByPowerOf2I(instr) : DoModI(instr);
1401   } else if (instr->representation().IsDouble()) {
1402     return DoArithmeticD(Token::MOD, instr);
1403   } else {
1404     return DoArithmeticT(Token::MOD, instr);
1405   }
1406 }
1407 
1408 
DoMul(HMul * instr)1409 LInstruction* LChunkBuilder::DoMul(HMul* instr) {
1410   if (instr->representation().IsSmiOrInteger32()) {
1411     DCHECK(instr->left()->representation().Equals(instr->representation()));
1412     DCHECK(instr->right()->representation().Equals(instr->representation()));
1413     HValue* left = instr->BetterLeftOperand();
1414     HValue* right = instr->BetterRightOperand();
1415     LOperand* left_op;
1416     LOperand* right_op;
1417     bool can_overflow = instr->CheckFlag(HValue::kCanOverflow);
1418     bool bailout_on_minus_zero = instr->CheckFlag(HValue::kBailoutOnMinusZero);
1419 
1420     int32_t constant_value = 0;
1421     if (right->IsConstant()) {
1422       HConstant* constant = HConstant::cast(right);
1423       constant_value = constant->Integer32Value();
1424       // Constants -1, 0 and 1 can be optimized if the result can overflow.
1425       // For other constants, it can be optimized only without overflow.
1426       if (!can_overflow || ((constant_value >= -1) && (constant_value <= 1))) {
1427         left_op = UseRegisterAtStart(left);
1428         right_op = UseConstant(right);
1429       } else {
1430         if (bailout_on_minus_zero) {
1431           left_op = UseRegister(left);
1432         } else {
1433           left_op = UseRegisterAtStart(left);
1434         }
1435         right_op = UseRegister(right);
1436       }
1437     } else {
1438       if (bailout_on_minus_zero) {
1439         left_op = UseRegister(left);
1440       } else {
1441         left_op = UseRegisterAtStart(left);
1442       }
1443       right_op = UseRegister(right);
1444     }
1445     LInstruction* result =
1446         instr->representation().IsSmi()
1447             ? DefineAsRegister(new (zone()) LMulS(left_op, right_op))
1448             : DefineAsRegister(new (zone()) LMulI(left_op, right_op));
1449     if (right_op->IsConstantOperand()
1450             ? ((can_overflow && constant_value == -1) ||
1451                (bailout_on_minus_zero && constant_value <= 0))
1452             : (can_overflow || bailout_on_minus_zero)) {
1453       AssignEnvironment(result);
1454     }
1455     return result;
1456 
1457   } else if (instr->representation().IsDouble()) {
1458     if (kArchVariant == kMips64r2) {
1459       if (instr->HasOneUse() && instr->uses().value()->IsAdd()) {
1460         HAdd* add = HAdd::cast(instr->uses().value());
1461         if (instr == add->left()) {
1462           // This mul is the lhs of an add. The add and mul will be folded
1463           // into a multiply-add.
1464           return NULL;
1465         }
1466         if (instr == add->right() && !add->left()->IsMul()) {
1467           // This mul is the rhs of an add, where the lhs is not another mul.
1468           // The add and mul will be folded into a multiply-add.
1469           return NULL;
1470         }
1471       }
1472     }
1473     return DoArithmeticD(Token::MUL, instr);
1474   } else {
1475     return DoArithmeticT(Token::MUL, instr);
1476   }
1477 }
1478 
1479 
DoSub(HSub * instr)1480 LInstruction* LChunkBuilder::DoSub(HSub* instr) {
1481   if (instr->representation().IsSmiOrInteger32()) {
1482     DCHECK(instr->left()->representation().Equals(instr->representation()));
1483     DCHECK(instr->right()->representation().Equals(instr->representation()));
1484     LOperand* left = UseRegisterAtStart(instr->left());
1485     LOperand* right = UseRegisterOrConstantAtStart(instr->right());
1486     LInstruction* result =
1487         instr->representation().IsSmi()
1488             ? DefineAsRegister(new (zone()) LSubS(left, right))
1489             : DefineAsRegister(new (zone()) LSubI(left, right));
1490     if (instr->CheckFlag(HValue::kCanOverflow)) {
1491       result = AssignEnvironment(result);
1492     }
1493     return result;
1494   } else if (instr->representation().IsDouble()) {
1495     return DoArithmeticD(Token::SUB, instr);
1496   } else {
1497     return DoArithmeticT(Token::SUB, instr);
1498   }
1499 }
1500 
1501 
DoMultiplyAdd(HMul * mul,HValue * addend)1502 LInstruction* LChunkBuilder::DoMultiplyAdd(HMul* mul, HValue* addend) {
1503   LOperand* multiplier_op = UseRegisterAtStart(mul->left());
1504   LOperand* multiplicand_op = UseRegisterAtStart(mul->right());
1505   LOperand* addend_op = UseRegisterAtStart(addend);
1506   return DefineSameAsFirst(new(zone()) LMultiplyAddD(addend_op, multiplier_op,
1507                                                      multiplicand_op));
1508 }
1509 
1510 
DoAdd(HAdd * instr)1511 LInstruction* LChunkBuilder::DoAdd(HAdd* instr) {
1512   if (instr->representation().IsSmiOrInteger32()) {
1513     DCHECK(instr->left()->representation().Equals(instr->representation()));
1514     DCHECK(instr->right()->representation().Equals(instr->representation()));
1515     LOperand* left = UseRegisterAtStart(instr->BetterLeftOperand());
1516     LOperand* right = UseRegisterOrConstantAtStart(instr->BetterRightOperand());
1517     LInstruction* result =
1518         instr->representation().IsSmi()
1519             ? DefineAsRegister(new (zone()) LAddS(left, right))
1520             : DefineAsRegister(new (zone()) LAddI(left, right));
1521     if (instr->CheckFlag(HValue::kCanOverflow)) {
1522       result = AssignEnvironment(result);
1523     }
1524     return result;
1525   } else if (instr->representation().IsExternal()) {
1526     DCHECK(instr->IsConsistentExternalRepresentation());
1527     DCHECK(!instr->CheckFlag(HValue::kCanOverflow));
1528     LOperand* left = UseRegisterAtStart(instr->left());
1529     LOperand* right = UseRegisterOrConstantAtStart(instr->right());
1530     return DefineAsRegister(new (zone()) LAddE(left, right));
1531   } else if (instr->representation().IsDouble()) {
1532     if (kArchVariant == kMips64r2) {
1533       if (instr->left()->IsMul())
1534         return DoMultiplyAdd(HMul::cast(instr->left()), instr->right());
1535 
1536       if (instr->right()->IsMul()) {
1537         DCHECK(!instr->left()->IsMul());
1538         return DoMultiplyAdd(HMul::cast(instr->right()), instr->left());
1539       }
1540     }
1541     return DoArithmeticD(Token::ADD, instr);
1542   } else {
1543     return DoArithmeticT(Token::ADD, instr);
1544   }
1545 }
1546 
1547 
DoMathMinMax(HMathMinMax * instr)1548 LInstruction* LChunkBuilder::DoMathMinMax(HMathMinMax* instr) {
1549   LOperand* left = NULL;
1550   LOperand* right = NULL;
1551   if (instr->representation().IsSmiOrInteger32()) {
1552     DCHECK(instr->left()->representation().Equals(instr->representation()));
1553     DCHECK(instr->right()->representation().Equals(instr->representation()));
1554     left = UseRegisterAtStart(instr->BetterLeftOperand());
1555     right = UseOrConstantAtStart(instr->BetterRightOperand());
1556   } else {
1557     DCHECK(instr->representation().IsDouble());
1558     DCHECK(instr->left()->representation().IsDouble());
1559     DCHECK(instr->right()->representation().IsDouble());
1560     left = UseRegisterAtStart(instr->left());
1561     right = UseRegisterAtStart(instr->right());
1562   }
1563   return DefineAsRegister(new(zone()) LMathMinMax(left, right));
1564 }
1565 
1566 
DoPower(HPower * instr)1567 LInstruction* LChunkBuilder::DoPower(HPower* instr) {
1568   DCHECK(instr->representation().IsDouble());
1569   // We call a C function for double power. It can't trigger a GC.
1570   // We need to use fixed result register for the call.
1571   Representation exponent_type = instr->right()->representation();
1572   DCHECK(instr->left()->representation().IsDouble());
1573   LOperand* left = UseFixedDouble(instr->left(), f2);
1574   LOperand* right =
1575       exponent_type.IsDouble()
1576           ? UseFixedDouble(instr->right(), f4)
1577           : UseFixed(instr->right(), MathPowTaggedDescriptor::exponent());
1578   LPower* result = new(zone()) LPower(left, right);
1579   return MarkAsCall(DefineFixedDouble(result, f0),
1580                     instr,
1581                     CAN_DEOPTIMIZE_EAGERLY);
1582 }
1583 
1584 
DoCompareGeneric(HCompareGeneric * instr)1585 LInstruction* LChunkBuilder::DoCompareGeneric(HCompareGeneric* instr) {
1586   DCHECK(instr->left()->representation().IsTagged());
1587   DCHECK(instr->right()->representation().IsTagged());
1588   LOperand* context = UseFixed(instr->context(), cp);
1589   LOperand* left = UseFixed(instr->left(), a1);
1590   LOperand* right = UseFixed(instr->right(), a0);
1591   LCmpT* result = new(zone()) LCmpT(context, left, right);
1592   return MarkAsCall(DefineFixed(result, v0), instr);
1593 }
1594 
1595 
DoCompareNumericAndBranch(HCompareNumericAndBranch * instr)1596 LInstruction* LChunkBuilder::DoCompareNumericAndBranch(
1597     HCompareNumericAndBranch* instr) {
1598   Representation r = instr->representation();
1599   if (r.IsSmiOrInteger32()) {
1600     DCHECK(instr->left()->representation().Equals(r));
1601     DCHECK(instr->right()->representation().Equals(r));
1602     LOperand* left = UseRegisterOrConstantAtStart(instr->left());
1603     LOperand* right = UseRegisterOrConstantAtStart(instr->right());
1604     return new(zone()) LCompareNumericAndBranch(left, right);
1605   } else {
1606     DCHECK(r.IsDouble());
1607     DCHECK(instr->left()->representation().IsDouble());
1608     DCHECK(instr->right()->representation().IsDouble());
1609     LOperand* left = UseRegisterAtStart(instr->left());
1610     LOperand* right = UseRegisterAtStart(instr->right());
1611     return new(zone()) LCompareNumericAndBranch(left, right);
1612   }
1613 }
1614 
1615 
DoCompareObjectEqAndBranch(HCompareObjectEqAndBranch * instr)1616 LInstruction* LChunkBuilder::DoCompareObjectEqAndBranch(
1617     HCompareObjectEqAndBranch* instr) {
1618   LOperand* left = UseRegisterAtStart(instr->left());
1619   LOperand* right = UseRegisterAtStart(instr->right());
1620   return new(zone()) LCmpObjectEqAndBranch(left, right);
1621 }
1622 
1623 
DoCompareHoleAndBranch(HCompareHoleAndBranch * instr)1624 LInstruction* LChunkBuilder::DoCompareHoleAndBranch(
1625     HCompareHoleAndBranch* instr) {
1626   LOperand* value = UseRegisterAtStart(instr->value());
1627   return new(zone()) LCmpHoleAndBranch(value);
1628 }
1629 
1630 
DoIsStringAndBranch(HIsStringAndBranch * instr)1631 LInstruction* LChunkBuilder::DoIsStringAndBranch(HIsStringAndBranch* instr) {
1632   DCHECK(instr->value()->representation().IsTagged());
1633   LOperand* temp = TempRegister();
1634   return new(zone()) LIsStringAndBranch(UseRegisterAtStart(instr->value()),
1635                                         temp);
1636 }
1637 
1638 
DoIsSmiAndBranch(HIsSmiAndBranch * instr)1639 LInstruction* LChunkBuilder::DoIsSmiAndBranch(HIsSmiAndBranch* instr) {
1640   DCHECK(instr->value()->representation().IsTagged());
1641   return new(zone()) LIsSmiAndBranch(Use(instr->value()));
1642 }
1643 
1644 
DoIsUndetectableAndBranch(HIsUndetectableAndBranch * instr)1645 LInstruction* LChunkBuilder::DoIsUndetectableAndBranch(
1646     HIsUndetectableAndBranch* instr) {
1647   DCHECK(instr->value()->representation().IsTagged());
1648   return new(zone()) LIsUndetectableAndBranch(
1649       UseRegisterAtStart(instr->value()), TempRegister());
1650 }
1651 
1652 
DoStringCompareAndBranch(HStringCompareAndBranch * instr)1653 LInstruction* LChunkBuilder::DoStringCompareAndBranch(
1654     HStringCompareAndBranch* instr) {
1655   DCHECK(instr->left()->representation().IsTagged());
1656   DCHECK(instr->right()->representation().IsTagged());
1657   LOperand* context = UseFixed(instr->context(), cp);
1658   LOperand* left = UseFixed(instr->left(), a1);
1659   LOperand* right = UseFixed(instr->right(), a0);
1660   LStringCompareAndBranch* result =
1661       new(zone()) LStringCompareAndBranch(context, left, right);
1662   return MarkAsCall(result, instr);
1663 }
1664 
1665 
DoHasInstanceTypeAndBranch(HHasInstanceTypeAndBranch * instr)1666 LInstruction* LChunkBuilder::DoHasInstanceTypeAndBranch(
1667     HHasInstanceTypeAndBranch* instr) {
1668   DCHECK(instr->value()->representation().IsTagged());
1669   LOperand* value = UseRegisterAtStart(instr->value());
1670   return new(zone()) LHasInstanceTypeAndBranch(value);
1671 }
1672 
DoClassOfTestAndBranch(HClassOfTestAndBranch * instr)1673 LInstruction* LChunkBuilder::DoClassOfTestAndBranch(
1674     HClassOfTestAndBranch* instr) {
1675   DCHECK(instr->value()->representation().IsTagged());
1676   return new(zone()) LClassOfTestAndBranch(UseRegister(instr->value()),
1677                                            TempRegister());
1678 }
1679 
1680 
DoSeqStringGetChar(HSeqStringGetChar * instr)1681 LInstruction* LChunkBuilder::DoSeqStringGetChar(HSeqStringGetChar* instr) {
1682   LOperand* string = UseRegisterAtStart(instr->string());
1683   LOperand* index = UseRegisterOrConstantAtStart(instr->index());
1684   return DefineAsRegister(new(zone()) LSeqStringGetChar(string, index));
1685 }
1686 
1687 
DoSeqStringSetChar(HSeqStringSetChar * instr)1688 LInstruction* LChunkBuilder::DoSeqStringSetChar(HSeqStringSetChar* instr) {
1689   LOperand* string = UseRegisterAtStart(instr->string());
1690   LOperand* index = FLAG_debug_code
1691       ? UseRegisterAtStart(instr->index())
1692       : UseRegisterOrConstantAtStart(instr->index());
1693   LOperand* value = UseRegisterAtStart(instr->value());
1694   LOperand* context = FLAG_debug_code ? UseFixed(instr->context(), cp) : NULL;
1695   return new(zone()) LSeqStringSetChar(context, string, index, value);
1696 }
1697 
1698 
DoBoundsCheck(HBoundsCheck * instr)1699 LInstruction* LChunkBuilder::DoBoundsCheck(HBoundsCheck* instr) {
1700   if (!FLAG_debug_code && instr->skip_check()) return NULL;
1701   LOperand* index = UseRegisterOrConstantAtStart(instr->index());
1702   LOperand* length = !index->IsConstantOperand()
1703   ? UseRegisterOrConstantAtStart(instr->length())
1704   : UseRegisterAtStart(instr->length());
1705   LInstruction* result = new(zone()) LBoundsCheck(index, length);
1706   if (!FLAG_debug_code || !instr->skip_check()) {
1707     result = AssignEnvironment(result);
1708   }
1709 return result;
1710 }
1711 
1712 
DoAbnormalExit(HAbnormalExit * instr)1713 LInstruction* LChunkBuilder::DoAbnormalExit(HAbnormalExit* instr) {
1714   // The control instruction marking the end of a block that completed
1715   // abruptly (e.g., threw an exception).  There is nothing specific to do.
1716   return NULL;
1717 }
1718 
1719 
DoUseConst(HUseConst * instr)1720 LInstruction* LChunkBuilder::DoUseConst(HUseConst* instr) {
1721   return NULL;
1722 }
1723 
1724 
DoForceRepresentation(HForceRepresentation * bad)1725 LInstruction* LChunkBuilder::DoForceRepresentation(HForceRepresentation* bad) {
1726   // All HForceRepresentation instructions should be eliminated in the
1727   // representation change phase of Hydrogen.
1728   UNREACHABLE();
1729   return NULL;
1730 }
1731 
1732 
DoChange(HChange * instr)1733 LInstruction* LChunkBuilder::DoChange(HChange* instr) {
1734   Representation from = instr->from();
1735   Representation to = instr->to();
1736   HValue* val = instr->value();
1737   if (from.IsSmi()) {
1738     if (to.IsTagged()) {
1739       LOperand* value = UseRegister(val);
1740       return DefineSameAsFirst(new(zone()) LDummyUse(value));
1741     }
1742     from = Representation::Tagged();
1743   }
1744   if (from.IsTagged()) {
1745     if (to.IsDouble()) {
1746       LOperand* value = UseRegister(val);
1747       LInstruction* result = DefineAsRegister(new(zone()) LNumberUntagD(value));
1748       if (!val->representation().IsSmi()) result = AssignEnvironment(result);
1749       return result;
1750     } else if (to.IsSmi()) {
1751       LOperand* value = UseRegister(val);
1752       if (val->type().IsSmi()) {
1753         return DefineSameAsFirst(new(zone()) LDummyUse(value));
1754       }
1755       return AssignEnvironment(DefineSameAsFirst(new(zone()) LCheckSmi(value)));
1756     } else {
1757       DCHECK(to.IsInteger32());
1758       if (val->type().IsSmi() || val->representation().IsSmi()) {
1759         LOperand* value = UseRegisterAtStart(val);
1760         return DefineAsRegister(new(zone()) LSmiUntag(value, false));
1761       } else {
1762         LOperand* value = UseRegister(val);
1763         LOperand* temp1 = TempRegister();
1764         LOperand* temp2 = TempDoubleRegister();
1765         LInstruction* result =
1766             DefineSameAsFirst(new(zone()) LTaggedToI(value, temp1, temp2));
1767         if (!val->representation().IsSmi()) result = AssignEnvironment(result);
1768         return result;
1769       }
1770     }
1771   } else if (from.IsDouble()) {
1772     if (to.IsTagged()) {
1773       info()->MarkAsDeferredCalling();
1774       LOperand* value = UseRegister(val);
1775       LOperand* temp1 = TempRegister();
1776       LOperand* temp2 = TempRegister();
1777 
1778       LUnallocated* result_temp = TempRegister();
1779       LNumberTagD* result = new(zone()) LNumberTagD(value, temp1, temp2);
1780       return AssignPointerMap(Define(result, result_temp));
1781     } else if (to.IsSmi()) {
1782       LOperand* value = UseRegister(val);
1783       return AssignEnvironment(
1784           DefineAsRegister(new(zone()) LDoubleToSmi(value)));
1785     } else {
1786       DCHECK(to.IsInteger32());
1787       LOperand* value = UseRegister(val);
1788       LInstruction* result = DefineAsRegister(new(zone()) LDoubleToI(value));
1789       if (!instr->CanTruncateToInt32()) result = AssignEnvironment(result);
1790       return result;
1791     }
1792   } else if (from.IsInteger32()) {
1793     info()->MarkAsDeferredCalling();
1794     if (to.IsTagged()) {
1795       if (val->CheckFlag(HInstruction::kUint32)) {
1796         LOperand* value = UseRegisterAtStart(val);
1797         LOperand* temp1 = TempRegister();
1798         LOperand* temp2 = TempRegister();
1799         LNumberTagU* result = new(zone()) LNumberTagU(value, temp1, temp2);
1800         return AssignPointerMap(DefineAsRegister(result));
1801       } else {
1802         STATIC_ASSERT((kMinInt == Smi::kMinValue) &&
1803                       (kMaxInt == Smi::kMaxValue));
1804         LOperand* value = UseRegisterAtStart(val);
1805         return DefineAsRegister(new(zone()) LSmiTag(value));
1806       }
1807     } else if (to.IsSmi()) {
1808       LOperand* value = UseRegister(val);
1809       LInstruction* result = DefineAsRegister(new(zone()) LSmiTag(value));
1810       if (instr->CheckFlag(HValue::kCanOverflow)) {
1811         result = AssignEnvironment(result);
1812       }
1813       return result;
1814     } else {
1815       DCHECK(to.IsDouble());
1816       if (val->CheckFlag(HInstruction::kUint32)) {
1817         return DefineAsRegister(new(zone()) LUint32ToDouble(UseRegister(val)));
1818       } else {
1819         return DefineAsRegister(new(zone()) LInteger32ToDouble(Use(val)));
1820       }
1821     }
1822   }
1823   UNREACHABLE();
1824   return NULL;
1825 }
1826 
1827 
DoCheckHeapObject(HCheckHeapObject * instr)1828 LInstruction* LChunkBuilder::DoCheckHeapObject(HCheckHeapObject* instr) {
1829   LOperand* value = UseRegisterAtStart(instr->value());
1830   LInstruction* result = new(zone()) LCheckNonSmi(value);
1831   if (!instr->value()->type().IsHeapObject()) {
1832     result = AssignEnvironment(result);
1833   }
1834   return result;
1835 }
1836 
1837 
DoCheckSmi(HCheckSmi * instr)1838 LInstruction* LChunkBuilder::DoCheckSmi(HCheckSmi* instr) {
1839   LOperand* value = UseRegisterAtStart(instr->value());
1840   return AssignEnvironment(new(zone()) LCheckSmi(value));
1841 }
1842 
1843 
DoCheckArrayBufferNotNeutered(HCheckArrayBufferNotNeutered * instr)1844 LInstruction* LChunkBuilder::DoCheckArrayBufferNotNeutered(
1845     HCheckArrayBufferNotNeutered* instr) {
1846   LOperand* view = UseRegisterAtStart(instr->value());
1847   LCheckArrayBufferNotNeutered* result =
1848       new (zone()) LCheckArrayBufferNotNeutered(view);
1849   return AssignEnvironment(result);
1850 }
1851 
1852 
DoCheckInstanceType(HCheckInstanceType * instr)1853 LInstruction* LChunkBuilder::DoCheckInstanceType(HCheckInstanceType* instr) {
1854   LOperand* value = UseRegisterAtStart(instr->value());
1855   LInstruction* result = new(zone()) LCheckInstanceType(value);
1856   return AssignEnvironment(result);
1857 }
1858 
1859 
DoCheckValue(HCheckValue * instr)1860 LInstruction* LChunkBuilder::DoCheckValue(HCheckValue* instr) {
1861   LOperand* value = UseRegisterAtStart(instr->value());
1862   return AssignEnvironment(new(zone()) LCheckValue(value));
1863 }
1864 
1865 
DoCheckMaps(HCheckMaps * instr)1866 LInstruction* LChunkBuilder::DoCheckMaps(HCheckMaps* instr) {
1867   if (instr->IsStabilityCheck()) return new(zone()) LCheckMaps;
1868   LOperand* value = UseRegisterAtStart(instr->value());
1869   LInstruction* result = AssignEnvironment(new(zone()) LCheckMaps(value));
1870   if (instr->HasMigrationTarget()) {
1871     info()->MarkAsDeferredCalling();
1872     result = AssignPointerMap(result);
1873   }
1874   return result;
1875 }
1876 
1877 
DoClampToUint8(HClampToUint8 * instr)1878 LInstruction* LChunkBuilder::DoClampToUint8(HClampToUint8* instr) {
1879   HValue* value = instr->value();
1880   Representation input_rep = value->representation();
1881   LOperand* reg = UseRegister(value);
1882   if (input_rep.IsDouble()) {
1883     // Revisit this decision, here and 8 lines below.
1884     return DefineAsRegister(new(zone()) LClampDToUint8(reg,
1885         TempDoubleRegister()));
1886   } else if (input_rep.IsInteger32()) {
1887     return DefineAsRegister(new(zone()) LClampIToUint8(reg));
1888   } else {
1889     DCHECK(input_rep.IsSmiOrTagged());
1890     LClampTToUint8* result =
1891         new(zone()) LClampTToUint8(reg, TempDoubleRegister());
1892     return AssignEnvironment(DefineAsRegister(result));
1893   }
1894 }
1895 
1896 
DoReturn(HReturn * instr)1897 LInstruction* LChunkBuilder::DoReturn(HReturn* instr) {
1898   LOperand* context = info()->IsStub()
1899       ? UseFixed(instr->context(), cp)
1900       : NULL;
1901   LOperand* parameter_count = UseRegisterOrConstant(instr->parameter_count());
1902   return new(zone()) LReturn(UseFixed(instr->value(), v0), context,
1903                              parameter_count);
1904 }
1905 
1906 
DoConstant(HConstant * instr)1907 LInstruction* LChunkBuilder::DoConstant(HConstant* instr) {
1908   Representation r = instr->representation();
1909   if (r.IsSmi()) {
1910     return DefineAsRegister(new(zone()) LConstantS);
1911   } else if (r.IsInteger32()) {
1912     return DefineAsRegister(new(zone()) LConstantI);
1913   } else if (r.IsDouble()) {
1914     return DefineAsRegister(new(zone()) LConstantD);
1915   } else if (r.IsExternal()) {
1916     return DefineAsRegister(new(zone()) LConstantE);
1917   } else if (r.IsTagged()) {
1918     return DefineAsRegister(new(zone()) LConstantT);
1919   } else {
1920     UNREACHABLE();
1921     return NULL;
1922   }
1923 }
1924 
1925 
DoLoadContextSlot(HLoadContextSlot * instr)1926 LInstruction* LChunkBuilder::DoLoadContextSlot(HLoadContextSlot* instr) {
1927   LOperand* context = UseRegisterAtStart(instr->value());
1928   LInstruction* result =
1929       DefineAsRegister(new(zone()) LLoadContextSlot(context));
1930   if (instr->RequiresHoleCheck() && instr->DeoptimizesOnHole()) {
1931     result = AssignEnvironment(result);
1932   }
1933   return result;
1934 }
1935 
1936 
DoStoreContextSlot(HStoreContextSlot * instr)1937 LInstruction* LChunkBuilder::DoStoreContextSlot(HStoreContextSlot* instr) {
1938   LOperand* context;
1939   LOperand* value;
1940   if (instr->NeedsWriteBarrier()) {
1941     context = UseTempRegister(instr->context());
1942     value = UseTempRegister(instr->value());
1943   } else {
1944     context = UseRegister(instr->context());
1945     value = UseRegister(instr->value());
1946   }
1947   LInstruction* result = new(zone()) LStoreContextSlot(context, value);
1948   if (instr->RequiresHoleCheck() && instr->DeoptimizesOnHole()) {
1949     result = AssignEnvironment(result);
1950   }
1951   return result;
1952 }
1953 
1954 
DoLoadNamedField(HLoadNamedField * instr)1955 LInstruction* LChunkBuilder::DoLoadNamedField(HLoadNamedField* instr) {
1956   LOperand* obj = UseRegisterAtStart(instr->object());
1957   return DefineAsRegister(new(zone()) LLoadNamedField(obj));
1958 }
1959 
1960 
DoLoadFunctionPrototype(HLoadFunctionPrototype * instr)1961 LInstruction* LChunkBuilder::DoLoadFunctionPrototype(
1962     HLoadFunctionPrototype* instr) {
1963   return AssignEnvironment(DefineAsRegister(
1964       new(zone()) LLoadFunctionPrototype(UseRegister(instr->function()))));
1965 }
1966 
1967 
DoLoadRoot(HLoadRoot * instr)1968 LInstruction* LChunkBuilder::DoLoadRoot(HLoadRoot* instr) {
1969   return DefineAsRegister(new(zone()) LLoadRoot);
1970 }
1971 
1972 
DoLoadKeyed(HLoadKeyed * instr)1973 LInstruction* LChunkBuilder::DoLoadKeyed(HLoadKeyed* instr) {
1974   DCHECK(instr->key()->representation().IsSmiOrInteger32());
1975   ElementsKind elements_kind = instr->elements_kind();
1976   LOperand* key = UseRegisterOrConstantAtStart(instr->key());
1977   LInstruction* result = NULL;
1978 
1979   if (!instr->is_fixed_typed_array()) {
1980     LOperand* obj = NULL;
1981     if (instr->representation().IsDouble()) {
1982       obj = UseRegister(instr->elements());
1983     } else {
1984       DCHECK(instr->representation().IsSmiOrTagged() ||
1985              instr->representation().IsInteger32());
1986       obj = UseRegisterAtStart(instr->elements());
1987     }
1988     result = DefineAsRegister(new (zone()) LLoadKeyed(obj, key, nullptr));
1989   } else {
1990     DCHECK(
1991         (instr->representation().IsInteger32() &&
1992          !IsDoubleOrFloatElementsKind(elements_kind)) ||
1993         (instr->representation().IsDouble() &&
1994          IsDoubleOrFloatElementsKind(elements_kind)));
1995     LOperand* backing_store = UseRegister(instr->elements());
1996     LOperand* backing_store_owner = UseAny(instr->backing_store_owner());
1997     result = DefineAsRegister(
1998         new (zone()) LLoadKeyed(backing_store, key, backing_store_owner));
1999   }
2000 
2001   bool needs_environment;
2002   if (instr->is_fixed_typed_array()) {
2003     // see LCodeGen::DoLoadKeyedExternalArray
2004     needs_environment = elements_kind == UINT32_ELEMENTS &&
2005                         !instr->CheckFlag(HInstruction::kUint32);
2006   } else {
2007     // see LCodeGen::DoLoadKeyedFixedDoubleArray and
2008     // LCodeGen::DoLoadKeyedFixedArray
2009     needs_environment =
2010         instr->RequiresHoleCheck() ||
2011         (instr->hole_mode() == CONVERT_HOLE_TO_UNDEFINED && info()->IsStub());
2012   }
2013 
2014   if (needs_environment) {
2015     result = AssignEnvironment(result);
2016   }
2017   return result;
2018 }
2019 
2020 
DoStoreKeyed(HStoreKeyed * instr)2021 LInstruction* LChunkBuilder::DoStoreKeyed(HStoreKeyed* instr) {
2022   if (!instr->is_fixed_typed_array()) {
2023     DCHECK(instr->elements()->representation().IsTagged());
2024     bool needs_write_barrier = instr->NeedsWriteBarrier();
2025     LOperand* object = NULL;
2026     LOperand* val = NULL;
2027     LOperand* key = NULL;
2028 
2029     if (instr->value()->representation().IsDouble()) {
2030       object = UseRegisterAtStart(instr->elements());
2031       key = UseRegisterOrConstantAtStart(instr->key());
2032       val = UseRegister(instr->value());
2033     } else {
2034       DCHECK(instr->value()->representation().IsSmiOrTagged() ||
2035              instr->value()->representation().IsInteger32());
2036       if (needs_write_barrier) {
2037         object = UseTempRegister(instr->elements());
2038         val = UseTempRegister(instr->value());
2039         key = UseTempRegister(instr->key());
2040       } else {
2041         object = UseRegisterAtStart(instr->elements());
2042         val = UseRegisterAtStart(instr->value());
2043         key = UseRegisterOrConstantAtStart(instr->key());
2044       }
2045     }
2046 
2047     return new (zone()) LStoreKeyed(object, key, val, nullptr);
2048   }
2049 
2050   DCHECK(
2051       (instr->value()->representation().IsInteger32() &&
2052        !IsDoubleOrFloatElementsKind(instr->elements_kind())) ||
2053       (instr->value()->representation().IsDouble() &&
2054        IsDoubleOrFloatElementsKind(instr->elements_kind())));
2055   DCHECK(instr->elements()->representation().IsExternal());
2056   LOperand* val = UseRegister(instr->value());
2057   LOperand* key = UseRegisterOrConstantAtStart(instr->key());
2058   LOperand* backing_store = UseRegister(instr->elements());
2059   LOperand* backing_store_owner = UseAny(instr->backing_store_owner());
2060   return new (zone()) LStoreKeyed(backing_store, key, val, backing_store_owner);
2061 }
2062 
2063 
DoTransitionElementsKind(HTransitionElementsKind * instr)2064 LInstruction* LChunkBuilder::DoTransitionElementsKind(
2065     HTransitionElementsKind* instr) {
2066   if (IsSimpleMapChangeTransition(instr->from_kind(), instr->to_kind())) {
2067     LOperand* object = UseRegister(instr->object());
2068     LOperand* new_map_reg = TempRegister();
2069     LTransitionElementsKind* result =
2070         new(zone()) LTransitionElementsKind(object, NULL, new_map_reg);
2071     return result;
2072   } else {
2073     LOperand* object = UseFixed(instr->object(), a0);
2074     LOperand* context = UseFixed(instr->context(), cp);
2075     LTransitionElementsKind* result =
2076         new(zone()) LTransitionElementsKind(object, context, NULL);
2077     return MarkAsCall(result, instr);
2078   }
2079 }
2080 
2081 
DoTrapAllocationMemento(HTrapAllocationMemento * instr)2082 LInstruction* LChunkBuilder::DoTrapAllocationMemento(
2083     HTrapAllocationMemento* instr) {
2084   LOperand* object = UseRegister(instr->object());
2085   LOperand* temp = TempRegister();
2086   LTrapAllocationMemento* result =
2087       new(zone()) LTrapAllocationMemento(object, temp);
2088   return AssignEnvironment(result);
2089 }
2090 
2091 
DoMaybeGrowElements(HMaybeGrowElements * instr)2092 LInstruction* LChunkBuilder::DoMaybeGrowElements(HMaybeGrowElements* instr) {
2093   info()->MarkAsDeferredCalling();
2094   LOperand* context = UseFixed(instr->context(), cp);
2095   LOperand* object = Use(instr->object());
2096   LOperand* elements = Use(instr->elements());
2097   LOperand* key = UseRegisterOrConstant(instr->key());
2098   LOperand* current_capacity = UseRegisterOrConstant(instr->current_capacity());
2099 
2100   LMaybeGrowElements* result = new (zone())
2101       LMaybeGrowElements(context, object, elements, key, current_capacity);
2102   DefineFixed(result, v0);
2103   return AssignPointerMap(AssignEnvironment(result));
2104 }
2105 
2106 
DoStoreNamedField(HStoreNamedField * instr)2107 LInstruction* LChunkBuilder::DoStoreNamedField(HStoreNamedField* instr) {
2108   bool is_in_object = instr->access().IsInobject();
2109   bool needs_write_barrier = instr->NeedsWriteBarrier();
2110   bool needs_write_barrier_for_map = instr->has_transition() &&
2111       instr->NeedsWriteBarrierForMap();
2112 
2113   LOperand* obj;
2114   if (needs_write_barrier) {
2115     obj = is_in_object
2116         ? UseRegister(instr->object())
2117         : UseTempRegister(instr->object());
2118   } else {
2119     obj = needs_write_barrier_for_map
2120         ? UseRegister(instr->object())
2121         : UseRegisterAtStart(instr->object());
2122   }
2123 
2124   LOperand* val;
2125   if (needs_write_barrier) {
2126     val = UseTempRegister(instr->value());
2127   } else if (instr->field_representation().IsDouble()) {
2128     val = UseRegisterAtStart(instr->value());
2129   } else {
2130     val = UseRegister(instr->value());
2131   }
2132 
2133   // We need a temporary register for write barrier of the map field.
2134   LOperand* temp = needs_write_barrier_for_map ? TempRegister() : NULL;
2135 
2136   return new(zone()) LStoreNamedField(obj, val, temp);
2137 }
2138 
2139 
DoStringAdd(HStringAdd * instr)2140 LInstruction* LChunkBuilder::DoStringAdd(HStringAdd* instr) {
2141   LOperand* context = UseFixed(instr->context(), cp);
2142   LOperand* left = UseFixed(instr->left(), a1);
2143   LOperand* right = UseFixed(instr->right(), a0);
2144   return MarkAsCall(
2145       DefineFixed(new(zone()) LStringAdd(context, left, right), v0),
2146       instr);
2147 }
2148 
2149 
DoStringCharCodeAt(HStringCharCodeAt * instr)2150 LInstruction* LChunkBuilder::DoStringCharCodeAt(HStringCharCodeAt* instr) {
2151   LOperand* string = UseTempRegister(instr->string());
2152   LOperand* index = UseTempRegister(instr->index());
2153   LOperand* context = UseAny(instr->context());
2154   LStringCharCodeAt* result =
2155       new(zone()) LStringCharCodeAt(context, string, index);
2156   return AssignPointerMap(DefineAsRegister(result));
2157 }
2158 
2159 
DoStringCharFromCode(HStringCharFromCode * instr)2160 LInstruction* LChunkBuilder::DoStringCharFromCode(HStringCharFromCode* instr) {
2161   LOperand* char_code = UseRegister(instr->value());
2162   LOperand* context = UseAny(instr->context());
2163   LStringCharFromCode* result =
2164       new(zone()) LStringCharFromCode(context, char_code);
2165   return AssignPointerMap(DefineAsRegister(result));
2166 }
2167 
2168 
DoAllocate(HAllocate * instr)2169 LInstruction* LChunkBuilder::DoAllocate(HAllocate* instr) {
2170   LOperand* size = UseRegisterOrConstant(instr->size());
2171   LOperand* temp1 = TempRegister();
2172   LOperand* temp2 = TempRegister();
2173   if (instr->IsAllocationFolded()) {
2174     LFastAllocate* result = new (zone()) LFastAllocate(size, temp1, temp2);
2175     return DefineAsRegister(result);
2176   } else {
2177     info()->MarkAsDeferredCalling();
2178     LOperand* context = UseAny(instr->context());
2179     LAllocate* result = new (zone()) LAllocate(context, size, temp1, temp2);
2180     return AssignPointerMap(DefineAsRegister(result));
2181   }
2182 }
2183 
2184 
DoOsrEntry(HOsrEntry * instr)2185 LInstruction* LChunkBuilder::DoOsrEntry(HOsrEntry* instr) {
2186   DCHECK(argument_count_ == 0);
2187   allocator_->MarkAsOsrEntry();
2188   current_block_->last_environment()->set_ast_id(instr->ast_id());
2189   return AssignEnvironment(new(zone()) LOsrEntry);
2190 }
2191 
2192 
DoParameter(HParameter * instr)2193 LInstruction* LChunkBuilder::DoParameter(HParameter* instr) {
2194   LParameter* result = new(zone()) LParameter;
2195   if (instr->kind() == HParameter::STACK_PARAMETER) {
2196     int spill_index = chunk()->GetParameterStackSlot(instr->index());
2197     return DefineAsSpilled(result, spill_index);
2198   } else {
2199     DCHECK(info()->IsStub());
2200     CallInterfaceDescriptor descriptor = graph()->descriptor();
2201     int index = static_cast<int>(instr->index());
2202     Register reg = descriptor.GetRegisterParameter(index);
2203     return DefineFixed(result, reg);
2204   }
2205 }
2206 
2207 
DoUnknownOSRValue(HUnknownOSRValue * instr)2208 LInstruction* LChunkBuilder::DoUnknownOSRValue(HUnknownOSRValue* instr) {
2209   // Use an index that corresponds to the location in the unoptimized frame,
2210   // which the optimized frame will subsume.
2211   int env_index = instr->index();
2212   int spill_index = 0;
2213   if (instr->environment()->is_parameter_index(env_index)) {
2214     spill_index = chunk()->GetParameterStackSlot(env_index);
2215   } else {
2216     spill_index = env_index - instr->environment()->first_local_index();
2217     if (spill_index > LUnallocated::kMaxFixedSlotIndex) {
2218       Retry(kTooManySpillSlotsNeededForOSR);
2219       spill_index = 0;
2220     }
2221     spill_index += StandardFrameConstants::kFixedSlotCount;
2222   }
2223   return DefineAsSpilled(new(zone()) LUnknownOSRValue, spill_index);
2224 }
2225 
2226 
DoArgumentsObject(HArgumentsObject * instr)2227 LInstruction* LChunkBuilder::DoArgumentsObject(HArgumentsObject* instr) {
2228   // There are no real uses of the arguments object.
2229   // arguments.length and element access are supported directly on
2230   // stack arguments, and any real arguments object use causes a bailout.
2231   // So this value is never used.
2232   return NULL;
2233 }
2234 
2235 
DoCapturedObject(HCapturedObject * instr)2236 LInstruction* LChunkBuilder::DoCapturedObject(HCapturedObject* instr) {
2237   instr->ReplayEnvironment(current_block_->last_environment());
2238 
2239   // There are no real uses of a captured object.
2240   return NULL;
2241 }
2242 
2243 
DoAccessArgumentsAt(HAccessArgumentsAt * instr)2244 LInstruction* LChunkBuilder::DoAccessArgumentsAt(HAccessArgumentsAt* instr) {
2245   info()->MarkAsRequiresFrame();
2246   LOperand* args = UseRegister(instr->arguments());
2247   LOperand* length = UseRegisterOrConstantAtStart(instr->length());
2248   LOperand* index = UseRegisterOrConstantAtStart(instr->index());
2249   return DefineAsRegister(new(zone()) LAccessArgumentsAt(args, length, index));
2250 }
2251 
2252 
DoTypeof(HTypeof * instr)2253 LInstruction* LChunkBuilder::DoTypeof(HTypeof* instr) {
2254   LOperand* context = UseFixed(instr->context(), cp);
2255   LOperand* value = UseFixed(instr->value(), a3);
2256   LTypeof* result = new (zone()) LTypeof(context, value);
2257   return MarkAsCall(DefineFixed(result, v0), instr);
2258 }
2259 
2260 
DoTypeofIsAndBranch(HTypeofIsAndBranch * instr)2261 LInstruction* LChunkBuilder::DoTypeofIsAndBranch(HTypeofIsAndBranch* instr) {
2262   return new(zone()) LTypeofIsAndBranch(UseTempRegister(instr->value()));
2263 }
2264 
2265 
DoSimulate(HSimulate * instr)2266 LInstruction* LChunkBuilder::DoSimulate(HSimulate* instr) {
2267   instr->ReplayEnvironment(current_block_->last_environment());
2268   return NULL;
2269 }
2270 
2271 
DoStackCheck(HStackCheck * instr)2272 LInstruction* LChunkBuilder::DoStackCheck(HStackCheck* instr) {
2273   if (instr->is_function_entry()) {
2274     LOperand* context = UseFixed(instr->context(), cp);
2275     return MarkAsCall(new(zone()) LStackCheck(context), instr);
2276   } else {
2277     DCHECK(instr->is_backwards_branch());
2278     LOperand* context = UseAny(instr->context());
2279     return AssignEnvironment(
2280         AssignPointerMap(new(zone()) LStackCheck(context)));
2281   }
2282 }
2283 
2284 
DoEnterInlined(HEnterInlined * instr)2285 LInstruction* LChunkBuilder::DoEnterInlined(HEnterInlined* instr) {
2286   HEnvironment* outer = current_block_->last_environment();
2287   outer->set_ast_id(instr->ReturnId());
2288   HConstant* undefined = graph()->GetConstantUndefined();
2289   HEnvironment* inner = outer->CopyForInlining(
2290       instr->closure(), instr->arguments_count(), instr->function(), undefined,
2291       instr->inlining_kind(), instr->syntactic_tail_call_mode());
2292   // Only replay binding of arguments object if it wasn't removed from graph.
2293   if (instr->arguments_var() != NULL && instr->arguments_object()->IsLinked()) {
2294     inner->Bind(instr->arguments_var(), instr->arguments_object());
2295   }
2296   inner->BindContext(instr->closure_context());
2297   inner->set_entry(instr);
2298   current_block_->UpdateEnvironment(inner);
2299   return NULL;
2300 }
2301 
2302 
DoLeaveInlined(HLeaveInlined * instr)2303 LInstruction* LChunkBuilder::DoLeaveInlined(HLeaveInlined* instr) {
2304   LInstruction* pop = NULL;
2305 
2306   HEnvironment* env = current_block_->last_environment();
2307 
2308   if (env->entry()->arguments_pushed()) {
2309     int argument_count = env->arguments_environment()->parameter_count();
2310     pop = new(zone()) LDrop(argument_count);
2311     DCHECK(instr->argument_delta() == -argument_count);
2312   }
2313 
2314   HEnvironment* outer = current_block_->last_environment()->
2315       DiscardInlined(false);
2316   current_block_->UpdateEnvironment(outer);
2317 
2318   return pop;
2319 }
2320 
2321 
DoForInPrepareMap(HForInPrepareMap * instr)2322 LInstruction* LChunkBuilder::DoForInPrepareMap(HForInPrepareMap* instr) {
2323   LOperand* context = UseFixed(instr->context(), cp);
2324   LOperand* object = UseFixed(instr->enumerable(), a0);
2325   LForInPrepareMap* result = new(zone()) LForInPrepareMap(context, object);
2326   return MarkAsCall(DefineFixed(result, v0), instr, CAN_DEOPTIMIZE_EAGERLY);
2327 }
2328 
2329 
DoForInCacheArray(HForInCacheArray * instr)2330 LInstruction* LChunkBuilder::DoForInCacheArray(HForInCacheArray* instr) {
2331   LOperand* map = UseRegister(instr->map());
2332   return AssignEnvironment(DefineAsRegister(new(zone()) LForInCacheArray(map)));
2333 }
2334 
2335 
DoCheckMapValue(HCheckMapValue * instr)2336 LInstruction* LChunkBuilder::DoCheckMapValue(HCheckMapValue* instr) {
2337   LOperand* value = UseRegisterAtStart(instr->value());
2338   LOperand* map = UseRegisterAtStart(instr->map());
2339   return AssignEnvironment(new(zone()) LCheckMapValue(value, map));
2340 }
2341 
2342 
DoLoadFieldByIndex(HLoadFieldByIndex * instr)2343 LInstruction* LChunkBuilder::DoLoadFieldByIndex(HLoadFieldByIndex* instr) {
2344   LOperand* object = UseRegister(instr->object());
2345   LOperand* index = UseTempRegister(instr->index());
2346   LLoadFieldByIndex* load = new(zone()) LLoadFieldByIndex(object, index);
2347   LInstruction* result = DefineSameAsFirst(load);
2348   return AssignPointerMap(result);
2349 }
2350 
2351 }  // namespace internal
2352 }  // namespace v8
2353 
2354 #endif  // V8_TARGET_ARCH_MIPS64
2355