1 // Copyright 2010 the V8 project authors. All rights reserved.
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3 // modification, are permitted provided that the following conditions are
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7 // notice, this list of conditions and the following disclaimer.
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28 #ifndef V8_ARM_CODEGEN_ARM_H_
29 #define V8_ARM_CODEGEN_ARM_H_
36 // Forward declarations
37 class CompilationInfo;
39 class RegisterAllocator;
42 enum InitState { CONST_INIT, NOT_CONST_INIT };
43 enum TypeofState { INSIDE_TYPEOF, NOT_INSIDE_TYPEOF };
46 // -------------------------------------------------------------------------
49 // A reference is a C++ stack-allocated object that puts a
50 // reference on the virtual frame. The reference may be consumed
51 // by GetValue, TakeValue, SetValue, and Codegen::UnloadReference.
52 // When the lifetime (scope) of a valid reference ends, it must have
53 // been consumed, and be in state UNLOADED.
54 class Reference BASE_EMBEDDED {
56 // The values of the types is important, see size().
57 enum Type { UNLOADED = -2, ILLEGAL = -1, SLOT = 0, NAMED = 1, KEYED = 2 };
58 Reference(CodeGenerator* cgen,
59 Expression* expression,
60 bool persist_after_get = false);
63 Expression* expression() const { return expression_; }
64 Type type() const { return type_; }
65 void set_type(Type value) {
66 ASSERT_EQ(ILLEGAL, type_);
71 ASSERT_NE(ILLEGAL, type_);
72 ASSERT_NE(UNLOADED, type_);
75 // The size the reference takes up on the stack.
77 return (type_ < SLOT) ? 0 : type_;
80 bool is_illegal() const { return type_ == ILLEGAL; }
81 bool is_slot() const { return type_ == SLOT; }
82 bool is_property() const { return type_ == NAMED || type_ == KEYED; }
83 bool is_unloaded() const { return type_ == UNLOADED; }
85 // Return the name. Only valid for named property references.
86 Handle<String> GetName();
88 // Generate code to push the value of the reference on top of the
89 // expression stack. The reference is expected to be already on top of
90 // the expression stack, and it is consumed by the call unless the
91 // reference is for a compound assignment.
92 // If the reference is not consumed, it is left in place under its value.
95 // Generate code to store the value on top of the expression stack in the
96 // reference. The reference is expected to be immediately below the value
97 // on the expression stack. The value is stored in the location specified
98 // by the reference, and is left on top of the stack, after the reference
99 // is popped from beneath it (unloaded).
100 void SetValue(InitState init_state);
103 CodeGenerator* cgen_;
104 Expression* expression_;
106 // Keep the reference on the stack after get, so it can be used by set later.
107 bool persist_after_get_;
111 // -------------------------------------------------------------------------
112 // Code generation state
114 // The state is passed down the AST by the code generator (and back up, in
115 // the form of the state of the label pair). It is threaded through the
116 // call stack. Constructing a state implicitly pushes it on the owning code
117 // generator's stack of states, and destroying one implicitly pops it.
119 class CodeGenState BASE_EMBEDDED {
121 // Create an initial code generator state. Destroying the initial state
122 // leaves the code generator with a NULL state.
123 explicit CodeGenState(CodeGenerator* owner);
125 // Create a code generator state based on a code generator's current
126 // state. The new state has its own pair of branch labels.
127 CodeGenState(CodeGenerator* owner,
128 JumpTarget* true_target,
129 JumpTarget* false_target);
131 // Destroy a code generator state and restore the owning code generator's
135 JumpTarget* true_target() const { return true_target_; }
136 JumpTarget* false_target() const { return false_target_; }
139 CodeGenerator* owner_;
140 JumpTarget* true_target_;
141 JumpTarget* false_target_;
142 CodeGenState* previous_;
146 // -------------------------------------------------------------------------
149 class CodeGenerator: public AstVisitor {
151 // Takes a function literal, generates code for it. This function should only
152 // be called by compiler.cc.
153 static Handle<Code> MakeCode(CompilationInfo* info);
155 // Printing of AST, etc. as requested by flags.
156 static void MakeCodePrologue(CompilationInfo* info);
158 // Allocate and install the code.
159 static Handle<Code> MakeCodeEpilogue(MacroAssembler* masm,
161 CompilationInfo* info);
163 #ifdef ENABLE_LOGGING_AND_PROFILING
164 static bool ShouldGenerateLog(Expression* type);
167 static void SetFunctionInfo(Handle<JSFunction> fun,
168 FunctionLiteral* lit,
170 Handle<Script> script);
172 static void RecordPositions(MacroAssembler* masm, int pos);
175 MacroAssembler* masm() { return masm_; }
176 VirtualFrame* frame() const { return frame_; }
177 inline Handle<Script> script();
179 bool has_valid_frame() const { return frame_ != NULL; }
181 // Set the virtual frame to be new_frame, with non-frame register
182 // reference counts given by non_frame_registers. The non-frame
183 // register reference counts of the old frame are returned in
184 // non_frame_registers.
185 void SetFrame(VirtualFrame* new_frame, RegisterFile* non_frame_registers);
189 RegisterAllocator* allocator() const { return allocator_; }
191 CodeGenState* state() { return state_; }
192 void set_state(CodeGenState* state) { state_ = state; }
194 void AddDeferred(DeferredCode* code) { deferred_.Add(code); }
196 static const int kUnknownIntValue = -1;
198 // If the name is an inline runtime function call return the number of
199 // expected arguments. Otherwise return -1.
200 static int InlineRuntimeCallArgumentsCount(Handle<String> name);
203 // Construction/Destruction
204 explicit CodeGenerator(MacroAssembler* masm);
207 inline bool is_eval();
208 inline Scope* scope();
210 // Generating deferred code.
211 void ProcessDeferred();
214 bool has_cc() const { return cc_reg_ != al; }
215 JumpTarget* true_target() const { return state_->true_target(); }
216 JumpTarget* false_target() const { return state_->false_target(); }
218 // We don't track loop nesting level on ARM yet.
219 int loop_nesting() const { return 0; }
222 void VisitStatements(ZoneList<Statement*>* statements);
224 #define DEF_VISIT(type) \
225 void Visit##type(type* node);
226 AST_NODE_LIST(DEF_VISIT)
229 // Visit a statement and then spill the virtual frame if control flow can
230 // reach the end of the statement (ie, it does not exit via break,
231 // continue, return, or throw). This function is used temporarily while
232 // the code generator is being transformed.
233 inline void VisitAndSpill(Statement* statement);
235 // Visit a list of statements and then spill the virtual frame if control
236 // flow can reach the end of the list.
237 inline void VisitStatementsAndSpill(ZoneList<Statement*>* statements);
239 // Main code generation function
240 void Generate(CompilationInfo* info);
242 // The following are used by class Reference.
243 void LoadReference(Reference* ref);
244 void UnloadReference(Reference* ref);
246 static MemOperand ContextOperand(Register context, int index) {
247 return MemOperand(context, Context::SlotOffset(index));
250 MemOperand SlotOperand(Slot* slot, Register tmp);
252 MemOperand ContextSlotOperandCheckExtensions(Slot* slot,
258 static MemOperand GlobalObject() {
259 return ContextOperand(cp, Context::GLOBAL_INDEX);
262 void LoadCondition(Expression* x,
263 JumpTarget* true_target,
264 JumpTarget* false_target,
266 void Load(Expression* expr);
268 void LoadGlobalReceiver(Register scratch);
270 // Generate code to push the value of an expression on top of the frame
271 // and then spill the frame fully to memory. This function is used
272 // temporarily while the code generator is being transformed.
273 inline void LoadAndSpill(Expression* expression);
275 // Call LoadCondition and then spill the virtual frame unless control flow
276 // cannot reach the end of the expression (ie, by emitting only
277 // unconditional jumps to the control targets).
278 inline void LoadConditionAndSpill(Expression* expression,
279 JumpTarget* true_target,
280 JumpTarget* false_target,
283 // Read a value from a slot and leave it on top of the expression stack.
284 void LoadFromSlot(Slot* slot, TypeofState typeof_state);
285 // Store the value on top of the stack to a slot.
286 void StoreToSlot(Slot* slot, InitState init_state);
287 // Load a keyed property, leaving it in r0. The receiver and key are
288 // passed on the stack, and remain there.
289 void EmitKeyedLoad(bool is_global);
291 void LoadFromGlobalSlotCheckExtensions(Slot* slot,
292 TypeofState typeof_state,
297 // Special code for typeof expressions: Unfortunately, we must
298 // be careful when loading the expression in 'typeof'
299 // expressions. We are not allowed to throw reference errors for
300 // non-existing properties of the global object, so we must make it
301 // look like an explicit property access, instead of an access
302 // through the context chain.
303 void LoadTypeofExpression(Expression* x);
305 void ToBoolean(JumpTarget* true_target, JumpTarget* false_target);
307 // Generate code that computes a shortcutting logical operation.
308 void GenerateLogicalBooleanOperation(BinaryOperation* node);
310 void GenericBinaryOperation(Token::Value op,
311 OverwriteMode overwrite_mode,
312 int known_rhs = kUnknownIntValue);
313 void VirtualFrameBinaryOperation(Token::Value op,
314 OverwriteMode overwrite_mode,
315 int known_rhs = kUnknownIntValue);
316 void Comparison(Condition cc,
319 bool strict = false);
321 void SmiOperation(Token::Value op,
322 Handle<Object> value,
326 void VirtualFrameSmiOperation(Token::Value op,
327 Handle<Object> value,
331 void CallWithArguments(ZoneList<Expression*>* arguments,
332 CallFunctionFlags flags,
336 void Branch(bool if_true, JumpTarget* target);
339 struct InlineRuntimeLUT {
340 void (CodeGenerator::*method)(ZoneList<Expression*>*);
345 static InlineRuntimeLUT* FindInlineRuntimeLUT(Handle<String> name);
346 bool CheckForInlineRuntimeCall(CallRuntime* node);
347 static bool PatchInlineRuntimeEntry(Handle<String> name,
348 const InlineRuntimeLUT& new_entry,
349 InlineRuntimeLUT* old_entry);
351 static Handle<Code> ComputeLazyCompile(int argc);
352 void ProcessDeclarations(ZoneList<Declaration*>* declarations);
354 static Handle<Code> ComputeCallInitialize(int argc, InLoopFlag in_loop);
356 // Declare global variables and functions in the given array of
358 void DeclareGlobals(Handle<FixedArray> pairs);
360 // Instantiate the function based on the shared function info.
361 void InstantiateFunction(Handle<SharedFunctionInfo> function_info);
363 // Support for type checks.
364 void GenerateIsSmi(ZoneList<Expression*>* args);
365 void GenerateIsNonNegativeSmi(ZoneList<Expression*>* args);
366 void GenerateIsArray(ZoneList<Expression*>* args);
367 void GenerateIsRegExp(ZoneList<Expression*>* args);
368 void GenerateIsObject(ZoneList<Expression*>* args);
369 void GenerateIsFunction(ZoneList<Expression*>* args);
370 void GenerateIsUndetectableObject(ZoneList<Expression*>* args);
372 // Support for construct call checks.
373 void GenerateIsConstructCall(ZoneList<Expression*>* args);
375 // Support for arguments.length and arguments[?].
376 void GenerateArgumentsLength(ZoneList<Expression*>* args);
377 void GenerateArguments(ZoneList<Expression*>* args);
379 // Support for accessing the class and value fields of an object.
380 void GenerateClassOf(ZoneList<Expression*>* args);
381 void GenerateValueOf(ZoneList<Expression*>* args);
382 void GenerateSetValueOf(ZoneList<Expression*>* args);
384 // Fast support for charCodeAt(n).
385 void GenerateFastCharCodeAt(ZoneList<Expression*>* args);
387 // Fast support for string.charAt(n) and string[n].
388 void GenerateCharFromCode(ZoneList<Expression*>* args);
390 // Fast support for object equality testing.
391 void GenerateObjectEquals(ZoneList<Expression*>* args);
393 void GenerateLog(ZoneList<Expression*>* args);
395 // Fast support for Math.random().
396 void GenerateRandomHeapNumber(ZoneList<Expression*>* args);
398 // Fast support for StringAdd.
399 void GenerateStringAdd(ZoneList<Expression*>* args);
401 // Fast support for SubString.
402 void GenerateSubString(ZoneList<Expression*>* args);
404 // Fast support for StringCompare.
405 void GenerateStringCompare(ZoneList<Expression*>* args);
407 // Support for direct calls from JavaScript to native RegExp code.
408 void GenerateRegExpExec(ZoneList<Expression*>* args);
410 // Fast support for number to string.
411 void GenerateNumberToString(ZoneList<Expression*>* args);
413 // Fast call to math functions.
414 void GenerateMathPow(ZoneList<Expression*>* args);
415 void GenerateMathSin(ZoneList<Expression*>* args);
416 void GenerateMathCos(ZoneList<Expression*>* args);
417 void GenerateMathSqrt(ZoneList<Expression*>* args);
419 // Simple condition analysis.
420 enum ConditionAnalysis {
425 ConditionAnalysis AnalyzeCondition(Expression* cond);
427 // Methods used to indicate which source code is generated for. Source
428 // positions are collected by the assembler and emitted with the relocation
430 void CodeForFunctionPosition(FunctionLiteral* fun);
431 void CodeForReturnPosition(FunctionLiteral* fun);
432 void CodeForStatementPosition(Statement* node);
433 void CodeForDoWhileConditionPosition(DoWhileStatement* stmt);
434 void CodeForSourcePosition(int pos);
437 // True if the registers are valid for entry to a block.
438 bool HasValidEntryRegisters();
441 List<DeferredCode*> deferred_;
444 MacroAssembler* masm_; // to generate code
446 CompilationInfo* info_;
448 // Code generation state
449 VirtualFrame* frame_;
450 RegisterAllocator* allocator_;
452 CodeGenState* state_;
455 BreakTarget function_return_;
457 // True if the function return is shadowed (ie, jumping to the target
458 // function_return_ does not jump to the true function return, but rather
459 // to some unlinking code).
460 bool function_return_is_shadowed_;
462 static InlineRuntimeLUT kInlineRuntimeLUT[];
464 friend class VirtualFrame;
465 friend class JumpTarget;
466 friend class Reference;
467 friend class FastCodeGenerator;
468 friend class FullCodeGenerator;
469 friend class FullCodeGenSyntaxChecker;
471 DISALLOW_COPY_AND_ASSIGN(CodeGenerator);
475 class GenericBinaryOpStub : public CodeStub {
477 GenericBinaryOpStub(Token::Value op,
481 int constant_rhs = CodeGenerator::kUnknownIntValue)
486 constant_rhs_(constant_rhs),
487 specialized_on_rhs_(RhsIsOneWeWantToOptimizeFor(op, constant_rhs)),
488 runtime_operands_type_(BinaryOpIC::DEFAULT),
491 GenericBinaryOpStub(int key, BinaryOpIC::TypeInfo type_info)
492 : op_(OpBits::decode(key)),
493 mode_(ModeBits::decode(key)),
494 lhs_(LhsRegister(RegisterBits::decode(key))),
495 rhs_(RhsRegister(RegisterBits::decode(key))),
496 constant_rhs_(KnownBitsForMinorKey(KnownIntBits::decode(key))),
497 specialized_on_rhs_(RhsIsOneWeWantToOptimizeFor(op_, constant_rhs_)),
498 runtime_operands_type_(type_info),
507 bool specialized_on_rhs_;
508 BinaryOpIC::TypeInfo runtime_operands_type_;
511 static const int kMaxKnownRhs = 0x40000000;
512 static const int kKnownRhsKeyBits = 6;
514 // Minor key encoding in 17 bits.
515 class ModeBits: public BitField<OverwriteMode, 0, 2> {};
516 class OpBits: public BitField<Token::Value, 2, 6> {};
517 class TypeInfoBits: public BitField<int, 8, 2> {};
518 class RegisterBits: public BitField<bool, 10, 1> {};
519 class KnownIntBits: public BitField<int, 11, kKnownRhsKeyBits> {};
521 Major MajorKey() { return GenericBinaryOp; }
523 ASSERT((lhs_.is(r0) && rhs_.is(r1)) ||
524 (lhs_.is(r1) && rhs_.is(r0)));
525 // Encode the parameters in a unique 18 bit value.
526 return OpBits::encode(op_)
527 | ModeBits::encode(mode_)
528 | KnownIntBits::encode(MinorKeyForKnownInt())
529 | TypeInfoBits::encode(runtime_operands_type_)
530 | RegisterBits::encode(lhs_.is(r0));
533 void Generate(MacroAssembler* masm);
534 void HandleNonSmiBitwiseOp(MacroAssembler* masm, Register lhs, Register rhs);
535 void HandleBinaryOpSlowCases(MacroAssembler* masm,
539 const Builtins::JavaScript& builtin);
540 void GenerateTypeTransition(MacroAssembler* masm);
542 static bool RhsIsOneWeWantToOptimizeFor(Token::Value op, int constant_rhs) {
543 if (constant_rhs == CodeGenerator::kUnknownIntValue) return false;
544 if (op == Token::DIV) return constant_rhs >= 2 && constant_rhs <= 3;
545 if (op == Token::MOD) {
546 if (constant_rhs <= 1) return false;
547 if (constant_rhs <= 10) return true;
548 if (constant_rhs <= kMaxKnownRhs && IsPowerOf2(constant_rhs)) return true;
554 int MinorKeyForKnownInt() {
555 if (!specialized_on_rhs_) return 0;
556 if (constant_rhs_ <= 10) return constant_rhs_ + 1;
557 ASSERT(IsPowerOf2(constant_rhs_));
559 int d = constant_rhs_;
560 while ((d & 1) == 0) {
564 ASSERT(key >= 0 && key < (1 << kKnownRhsKeyBits));
568 int KnownBitsForMinorKey(int key) {
570 if (key <= 11) return key - 1;
579 Register LhsRegister(bool lhs_is_r0) {
580 return lhs_is_r0 ? r0 : r1;
583 Register RhsRegister(bool lhs_is_r0) {
584 return lhs_is_r0 ? r1 : r0;
587 bool ShouldGenerateSmiCode() {
588 return ((op_ != Token::DIV && op_ != Token::MOD) || specialized_on_rhs_) &&
589 runtime_operands_type_ != BinaryOpIC::HEAP_NUMBERS &&
590 runtime_operands_type_ != BinaryOpIC::STRINGS;
593 bool ShouldGenerateFPCode() {
594 return runtime_operands_type_ != BinaryOpIC::STRINGS;
597 virtual int GetCodeKind() { return Code::BINARY_OP_IC; }
599 virtual InlineCacheState GetICState() {
600 return BinaryOpIC::ToState(runtime_operands_type_);
603 const char* GetName();
607 if (!specialized_on_rhs_) {
608 PrintF("GenericBinaryOpStub (%s)\n", Token::String(op_));
610 PrintF("GenericBinaryOpStub (%s by %d)\n",
619 class StringStubBase: public CodeStub {
621 // Generate code for copying characters using a simple loop. This should only
622 // be used in places where the number of characters is small and the
623 // additional setup and checking in GenerateCopyCharactersLong adds too much
624 // overhead. Copying of overlapping regions is not supported.
625 // Dest register ends at the position after the last character written.
626 void GenerateCopyCharacters(MacroAssembler* masm,
633 // Generate code for copying a large number of characters. This function
634 // is allowed to spend extra time setting up conditions to make copying
635 // faster. Copying of overlapping regions is not supported.
636 // Dest register ends at the position after the last character written.
637 void GenerateCopyCharactersLong(MacroAssembler* masm,
649 // Probe the symbol table for a two character string. If the string is
650 // not found by probing a jump to the label not_found is performed. This jump
651 // does not guarantee that the string is not in the symbol table. If the
652 // string is found the code falls through with the string in register r0.
653 // Contents of both c1 and c2 registers are modified. At the exit c1 is
654 // guaranteed to contain halfword with low and high bytes equal to
655 // initial contents of c1 and c2 respectively.
656 void GenerateTwoCharacterSymbolTableProbe(MacroAssembler* masm,
666 // Generate string hash.
667 void GenerateHashInit(MacroAssembler* masm,
671 void GenerateHashAddCharacter(MacroAssembler* masm,
675 void GenerateHashGetHash(MacroAssembler* masm,
680 // Flag that indicates how to generate code for the stub StringAddStub.
681 enum StringAddFlags {
682 NO_STRING_ADD_FLAGS = 0,
683 NO_STRING_CHECK_IN_STUB = 1 << 0 // Omit string check in stub.
687 class StringAddStub: public StringStubBase {
689 explicit StringAddStub(StringAddFlags flags) {
690 string_check_ = ((flags & NO_STRING_CHECK_IN_STUB) == 0);
694 Major MajorKey() { return StringAdd; }
695 int MinorKey() { return string_check_ ? 0 : 1; }
697 void Generate(MacroAssembler* masm);
699 // Should the stub check whether arguments are strings?
704 class SubStringStub: public StringStubBase {
709 Major MajorKey() { return SubString; }
710 int MinorKey() { return 0; }
712 void Generate(MacroAssembler* masm);
717 class StringCompareStub: public CodeStub {
719 StringCompareStub() { }
721 // Compare two flat ASCII strings and returns result in r0.
722 // Does not use the stack.
723 static void GenerateCompareFlatAsciiStrings(MacroAssembler* masm,
732 Major MajorKey() { return StringCompare; }
733 int MinorKey() { return 0; }
735 void Generate(MacroAssembler* masm);
739 // This stub can convert a signed int32 to a heap number (double). It does
740 // not work for int32s that are in Smi range! No GC occurs during this stub
741 // so you don't have to set up the frame.
742 class WriteInt32ToHeapNumberStub : public CodeStub {
744 WriteInt32ToHeapNumberStub(Register the_int,
745 Register the_heap_number,
748 the_heap_number_(the_heap_number),
749 scratch_(scratch) { }
753 Register the_heap_number_;
756 // Minor key encoding in 16 bits.
757 class IntRegisterBits: public BitField<int, 0, 4> {};
758 class HeapNumberRegisterBits: public BitField<int, 4, 4> {};
759 class ScratchRegisterBits: public BitField<int, 8, 4> {};
761 Major MajorKey() { return WriteInt32ToHeapNumber; }
763 // Encode the parameters in a unique 16 bit value.
764 return IntRegisterBits::encode(the_int_.code())
765 | HeapNumberRegisterBits::encode(the_heap_number_.code())
766 | ScratchRegisterBits::encode(scratch_.code());
769 void Generate(MacroAssembler* masm);
771 const char* GetName() { return "WriteInt32ToHeapNumberStub"; }
774 void Print() { PrintF("WriteInt32ToHeapNumberStub\n"); }
779 class NumberToStringStub: public CodeStub {
781 NumberToStringStub() { }
783 // Generate code to do a lookup in the number string cache. If the number in
784 // the register object is found in the cache the generated code falls through
785 // with the result in the result register. The object and the result register
786 // can be the same. If the number is not found in the cache the code jumps to
787 // the label not_found with only the content of register object unchanged.
788 static void GenerateLookupNumberStringCache(MacroAssembler* masm,
797 Major MajorKey() { return NumberToString; }
798 int MinorKey() { return 0; }
800 void Generate(MacroAssembler* masm);
802 const char* GetName() { return "NumberToStringStub"; }
806 PrintF("NumberToStringStub\n");
812 } } // namespace v8::internal
814 #endif // V8_ARM_CODEGEN_ARM_H_