// Copyright (c) 2013, the Dart project authors. Please see the AUTHORS file // for details. All rights reserved. Use of this source code is governed by a // BSD-style license that can be found in the LICENSE file. #include "vm/globals.h" #if defined(TARGET_ARCH_IA32) #include "vm/assembler.h" #include "vm/compiler.h" #include "vm/dart_entry.h" #include "vm/flow_graph_compiler.h" #include "vm/instructions.h" #include "vm/heap.h" #include "vm/object_store.h" #include "vm/resolver.h" #include "vm/scavenger.h" #include "vm/stack_frame.h" #include "vm/stub_code.h" #include "vm/tags.h" #define __ assembler-> namespace dart { DEFINE_FLAG(bool, inline_alloc, true, "Inline allocation of objects."); DEFINE_FLAG(bool, use_slow_path, false, "Set to true for debugging & verifying the slow paths."); DECLARE_FLAG(bool, trace_optimized_ic_calls); DEFINE_FLAG(bool, verify_incoming_contexts, false, ""); #define INT32_SIZEOF(x) static_cast(sizeof(x)) // Input parameters: // ESP : points to return address. // ESP + 4 : address of last argument in argument array. // ESP + 4*EDX : address of first argument in argument array. // ESP + 4*EDX + 4 : address of return value. // ECX : address of the runtime function to call. // EDX : number of arguments to the call. // Must preserve callee saved registers EDI and EBX. void StubCode::GenerateCallToRuntimeStub(Assembler* assembler) { const intptr_t isolate_offset = NativeArguments::isolate_offset(); const intptr_t argc_tag_offset = NativeArguments::argc_tag_offset(); const intptr_t argv_offset = NativeArguments::argv_offset(); const intptr_t retval_offset = NativeArguments::retval_offset(); __ EnterFrame(0); __ LoadIsolate(ESI); // Save exit frame information to enable stack walking as we are about // to transition to Dart VM C++ code. __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), ESP); #if defined(DEBUG) { Label ok; // Check that we are always entering from Dart code. __ cmpl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); __ j(EQUAL, &ok, Assembler::kNearJump); __ Stop("Not coming from Dart code."); __ Bind(&ok); } #endif // Mark that the isolate is executing VM code. __ movl(Address(ESI, Isolate::vm_tag_offset()), ECX); // Reserve space for arguments and align frame before entering C++ world. __ AddImmediate(ESP, Immediate(-INT32_SIZEOF(NativeArguments))); if (OS::ActivationFrameAlignment() > 1) { __ andl(ESP, Immediate(~(OS::ActivationFrameAlignment() - 1))); } // Pass NativeArguments structure by value and call runtime. __ movl(Address(ESP, isolate_offset), ESI); // Set isolate in NativeArgs. // There are no runtime calls to closures, so we do not need to set the tag // bits kClosureFunctionBit and kInstanceFunctionBit in argc_tag_. __ movl(Address(ESP, argc_tag_offset), EDX); // Set argc in NativeArguments. __ leal(EAX, Address(EBP, EDX, TIMES_4, 1 * kWordSize)); // Compute argv. __ movl(Address(ESP, argv_offset), EAX); // Set argv in NativeArguments. __ addl(EAX, Immediate(1 * kWordSize)); // Retval is next to 1st argument. __ movl(Address(ESP, retval_offset), EAX); // Set retval in NativeArguments. __ call(ECX); // Mark that the isolate is executing Dart code. ESI is callee saved. __ movl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); // Reset exit frame information in Isolate structure. __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), Immediate(0)); __ LeaveFrame(); __ ret(); } // Print the stop message. DEFINE_LEAF_RUNTIME_ENTRY(void, PrintStopMessage, 1, const char* message) { OS::Print("Stop message: %s\n", message); } END_LEAF_RUNTIME_ENTRY // Input parameters: // ESP : points to return address. // EAX : stop message (const char*). // Must preserve all registers, except EAX. void StubCode::GeneratePrintStopMessageStub(Assembler* assembler) { __ EnterCallRuntimeFrame(1 * kWordSize); __ movl(Address(ESP, 0), EAX); __ CallRuntime(kPrintStopMessageRuntimeEntry, 1); __ LeaveCallRuntimeFrame(); __ ret(); } // Input parameters: // ESP : points to return address. // ESP + 4 : address of return value. // EAX : address of first argument in argument array. // ECX : address of the native function to call. // EDX : argc_tag including number of arguments and function kind. // Uses EDI. void StubCode::GenerateCallNativeCFunctionStub(Assembler* assembler) { const intptr_t native_args_struct_offset = NativeEntry::kNumCallWrapperArguments * kWordSize; const intptr_t isolate_offset = NativeArguments::isolate_offset() + native_args_struct_offset; const intptr_t argc_tag_offset = NativeArguments::argc_tag_offset() + native_args_struct_offset; const intptr_t argv_offset = NativeArguments::argv_offset() + native_args_struct_offset; const intptr_t retval_offset = NativeArguments::retval_offset() + native_args_struct_offset; __ EnterFrame(0); __ LoadIsolate(ESI); // Save exit frame information to enable stack walking as we are about // to transition to dart VM code. __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), ESP); #if defined(DEBUG) { Label ok; // Check that we are always entering from Dart code. __ cmpl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); __ j(EQUAL, &ok, Assembler::kNearJump); __ Stop("Not coming from Dart code."); __ Bind(&ok); } #endif // Mark that the isolate is executing Native code. __ movl(Address(ESI, Isolate::vm_tag_offset()), ECX); // Reserve space for the native arguments structure, the outgoing parameters // (pointer to the native arguments structure, the C function entry point) // and align frame before entering the C++ world. __ AddImmediate(ESP, Immediate(-INT32_SIZEOF(NativeArguments) - (2 * kWordSize))); if (OS::ActivationFrameAlignment() > 1) { __ andl(ESP, Immediate(~(OS::ActivationFrameAlignment() - 1))); } // Pass NativeArguments structure by value and call native function. __ movl(Address(ESP, isolate_offset), ESI); // Set isolate in NativeArgs. __ movl(Address(ESP, argc_tag_offset), EDX); // Set argc in NativeArguments. __ movl(Address(ESP, argv_offset), EAX); // Set argv in NativeArguments. __ leal(EAX, Address(EBP, 2 * kWordSize)); // Compute return value addr. __ movl(Address(ESP, retval_offset), EAX); // Set retval in NativeArguments. __ leal(EAX, Address(ESP, 2 * kWordSize)); // Pointer to the NativeArguments. __ movl(Address(ESP, 0), EAX); // Pass the pointer to the NativeArguments. __ movl(Address(ESP, kWordSize), ECX); // Function to call. __ call(&NativeEntry::NativeCallWrapperLabel()); // Mark that the isolate is executing Dart code. ESI is callee saved. __ movl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); // Reset exit frame information in Isolate structure. __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), Immediate(0)); __ LeaveFrame(); __ ret(); } // Input parameters: // ESP : points to return address. // ESP + 4 : address of return value. // EAX : address of first argument in argument array. // ECX : address of the native function to call. // EDX : argc_tag including number of arguments and function kind. // Uses EDI. void StubCode::GenerateCallBootstrapCFunctionStub(Assembler* assembler) { const intptr_t native_args_struct_offset = kWordSize; const intptr_t isolate_offset = NativeArguments::isolate_offset() + native_args_struct_offset; const intptr_t argc_tag_offset = NativeArguments::argc_tag_offset() + native_args_struct_offset; const intptr_t argv_offset = NativeArguments::argv_offset() + native_args_struct_offset; const intptr_t retval_offset = NativeArguments::retval_offset() + native_args_struct_offset; __ EnterFrame(0); __ LoadIsolate(ESI); // Save exit frame information to enable stack walking as we are about // to transition to dart VM code. __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), ESP); #if defined(DEBUG) { Label ok; // Check that we are always entering from Dart code. __ cmpl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); __ j(EQUAL, &ok, Assembler::kNearJump); __ Stop("Not coming from Dart code."); __ Bind(&ok); } #endif // Mark that the isolate is executing Native code. __ movl(Address(ESI, Isolate::vm_tag_offset()), ECX); // Reserve space for the native arguments structure, the outgoing parameter // (pointer to the native arguments structure) and align frame before // entering the C++ world. __ AddImmediate(ESP, Immediate(-INT32_SIZEOF(NativeArguments) - kWordSize)); if (OS::ActivationFrameAlignment() > 1) { __ andl(ESP, Immediate(~(OS::ActivationFrameAlignment() - 1))); } // Pass NativeArguments structure by value and call native function. __ movl(Address(ESP, isolate_offset), ESI); // Set isolate in NativeArgs. __ movl(Address(ESP, argc_tag_offset), EDX); // Set argc in NativeArguments. __ movl(Address(ESP, argv_offset), EAX); // Set argv in NativeArguments. __ leal(EAX, Address(EBP, 2 * kWordSize)); // Compute return value addr. __ movl(Address(ESP, retval_offset), EAX); // Set retval in NativeArguments. __ leal(EAX, Address(ESP, kWordSize)); // Pointer to the NativeArguments. __ movl(Address(ESP, 0), EAX); // Pass the pointer to the NativeArguments. __ call(ECX); // Mark that the isolate is executing Dart code. ESI is callee saved. __ movl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); // Reset exit frame information in Isolate structure. __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), Immediate(0)); __ LeaveFrame(); __ ret(); } // Input parameters: // EDX: arguments descriptor array. void StubCode::GenerateCallStaticFunctionStub(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ EnterStubFrame(); __ pushl(EDX); // Preserve arguments descriptor array. __ pushl(raw_null); // Setup space on stack for return value. __ CallRuntime(kPatchStaticCallRuntimeEntry, 0); __ popl(EAX); // Get Code object result. __ popl(EDX); // Restore arguments descriptor array. // Remove the stub frame as we are about to jump to the dart function. __ LeaveFrame(); __ movl(ECX, FieldAddress(EAX, Code::instructions_offset())); __ addl(ECX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ jmp(ECX); } // Called from a static call only when an invalid code has been entered // (invalid because its function was optimized or deoptimized). // EDX: arguments descriptor array. void StubCode::GenerateFixCallersTargetStub(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); // Create a stub frame as we are pushing some objects on the stack before // calling into the runtime. __ EnterStubFrame(); __ pushl(EDX); // Preserve arguments descriptor array. __ pushl(raw_null); // Setup space on stack for return value. __ CallRuntime(kFixCallersTargetRuntimeEntry, 0); __ popl(EAX); // Get Code object. __ popl(EDX); // Restore arguments descriptor array. __ movl(EAX, FieldAddress(EAX, Code::instructions_offset())); __ addl(EAX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ LeaveFrame(); __ jmp(EAX); __ int3(); } // Called from object allocate instruction when the allocation stub has been // disabled. void StubCode::GenerateFixAllocationStubTargetStub(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ EnterStubFrame(); __ pushl(raw_null); // Setup space on stack for return value. __ CallRuntime(kFixAllocationStubTargetRuntimeEntry, 0); __ popl(EAX); // Get Code object. __ movl(EAX, FieldAddress(EAX, Code::instructions_offset())); __ addl(EAX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ LeaveFrame(); __ jmp(EAX); __ int3(); } // Called from array allocate instruction when the allocation stub has been // disabled. // EDX: length (preserved). // ECX: element type (preserved). void StubCode::GenerateFixAllocateArrayStubTargetStub(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ EnterStubFrame(); __ pushl(EDX); // Preserve length. __ pushl(ECX); // Preserve element type. __ pushl(raw_null); // Setup space on stack for return value. __ CallRuntime(kFixAllocationStubTargetRuntimeEntry, 0); __ popl(EAX); // Get Code object. __ popl(ECX); // Restore element type. __ popl(EDX); // Restore length. __ movl(EAX, FieldAddress(EAX, Code::instructions_offset())); __ addl(EAX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ LeaveFrame(); __ jmp(EAX); __ int3(); } // Input parameters: // EDX: smi-tagged argument count, may be zero. // EBP[kParamEndSlotFromFp + 1]: last argument. // Uses EAX, EBX, ECX, EDX, EDI. static void PushArgumentsArray(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); StubCode* stub_code = Isolate::Current()->stub_code(); // Allocate array to store arguments of caller. __ movl(ECX, raw_null); // Null element type for raw Array. const Code& array_stub = Code::Handle(stub_code->GetAllocateArrayStub()); const ExternalLabel array_label(array_stub.EntryPoint()); __ call(&array_label); __ SmiUntag(EDX); // EAX: newly allocated array. // EDX: length of the array (was preserved by the stub). __ pushl(EAX); // Array is in EAX and on top of stack. __ leal(EBX, Address(EBP, EDX, TIMES_4, kParamEndSlotFromFp * kWordSize)); __ leal(ECX, FieldAddress(EAX, Array::data_offset())); // EBX: address of first argument on stack. // ECX: address of first argument in array. Label loop, loop_condition; __ jmp(&loop_condition, Assembler::kNearJump); __ Bind(&loop); __ movl(EDI, Address(EBX, 0)); // No generational barrier needed, since array is in new space. __ InitializeFieldNoBarrier(EAX, Address(ECX, 0), EDI); __ AddImmediate(ECX, Immediate(kWordSize)); __ AddImmediate(EBX, Immediate(-kWordSize)); __ Bind(&loop_condition); __ decl(EDX); __ j(POSITIVE, &loop, Assembler::kNearJump); } DECLARE_LEAF_RUNTIME_ENTRY(intptr_t, DeoptimizeCopyFrame, intptr_t deopt_reason, uword saved_registers_address); DECLARE_LEAF_RUNTIME_ENTRY(void, DeoptimizeFillFrame, uword last_fp); // Used by eager and lazy deoptimization. Preserve result in EAX if necessary. // This stub translates optimized frame into unoptimized frame. The optimized // frame can contain values in registers and on stack, the unoptimized // frame contains all values on stack. // Deoptimization occurs in following steps: // - Push all registers that can contain values. // - Call C routine to copy the stack and saved registers into temporary buffer. // - Adjust caller's frame to correct unoptimized frame size. // - Fill the unoptimized frame. // - Materialize objects that require allocation (e.g. Double instances). // GC can occur only after frame is fully rewritten. // Stack after EnterDartFrame(0) below: // +------------------+ // | PC marker | <- TOS // +------------------+ // | Saved FP | <- FP of stub // +------------------+ // | return-address | (deoptimization point) // +------------------+ // | ... | <- SP of optimized frame // // Parts of the code cannot GC, part of the code can GC. static void GenerateDeoptimizationSequence(Assembler* assembler, bool preserve_result) { // Leaf runtime function DeoptimizeCopyFrame expects a Dart frame. __ EnterDartFrame(0); // The code in this frame may not cause GC. kDeoptimizeCopyFrameRuntimeEntry // and kDeoptimizeFillFrameRuntimeEntry are leaf runtime calls. const intptr_t saved_result_slot_from_fp = kFirstLocalSlotFromFp + 1 - (kNumberOfCpuRegisters - EAX); // Result in EAX is preserved as part of pushing all registers below. // Push registers in their enumeration order: lowest register number at // lowest address. for (intptr_t i = kNumberOfCpuRegisters - 1; i >= 0; i--) { __ pushl(static_cast(i)); } __ subl(ESP, Immediate(kNumberOfXmmRegisters * kFpuRegisterSize)); intptr_t offset = 0; for (intptr_t reg_idx = 0; reg_idx < kNumberOfXmmRegisters; ++reg_idx) { XmmRegister xmm_reg = static_cast(reg_idx); __ movups(Address(ESP, offset), xmm_reg); offset += kFpuRegisterSize; } __ movl(ECX, ESP); // Preserve saved registers block. __ ReserveAlignedFrameSpace(1 * kWordSize); __ movl(Address(ESP, 0), ECX); // Start of register block. __ CallRuntime(kDeoptimizeCopyFrameRuntimeEntry, 1); // Result (EAX) is stack-size (FP - SP) in bytes. if (preserve_result) { // Restore result into EBX temporarily. __ movl(EBX, Address(EBP, saved_result_slot_from_fp * kWordSize)); } __ LeaveFrame(); __ popl(EDX); // Preserve return address. __ movl(ESP, EBP); // Discard optimized frame. __ subl(ESP, EAX); // Reserve space for deoptimized frame. __ pushl(EDX); // Restore return address. // Leaf runtime function DeoptimizeFillFrame expects a Dart frame. __ EnterDartFrame(0); if (preserve_result) { __ pushl(EBX); // Preserve result as first local. } __ ReserveAlignedFrameSpace(1 * kWordSize); __ movl(Address(ESP, 0), EBP); // Pass last FP as parameter on stack. __ CallRuntime(kDeoptimizeFillFrameRuntimeEntry, 1); if (preserve_result) { // Restore result into EBX. __ movl(EBX, Address(EBP, kFirstLocalSlotFromFp * kWordSize)); } // Code above cannot cause GC. __ LeaveFrame(); // Frame is fully rewritten at this point and it is safe to perform a GC. // Materialize any objects that were deferred by FillFrame because they // require allocation. __ EnterStubFrame(); if (preserve_result) { __ pushl(EBX); // Preserve result, it will be GC-d here. } __ pushl(Immediate(Smi::RawValue(0))); // Space for the result. __ CallRuntime(kDeoptimizeMaterializeRuntimeEntry, 0); // Result tells stub how many bytes to remove from the expression stack // of the bottom-most frame. They were used as materialization arguments. __ popl(EBX); __ SmiUntag(EBX); if (preserve_result) { __ popl(EAX); // Restore result. } __ LeaveFrame(); __ popl(ECX); // Pop return address. __ addl(ESP, EBX); // Remove materialization arguments. __ pushl(ECX); // Push return address. __ ret(); } // TOS: return address + call-instruction-size (5 bytes). // EAX: result, must be preserved void StubCode::GenerateDeoptimizeLazyStub(Assembler* assembler) { // Correct return address to point just after the call that is being // deoptimized. __ popl(EBX); __ subl(EBX, Immediate(CallPattern::InstructionLength())); __ pushl(EBX); GenerateDeoptimizationSequence(assembler, true); // Preserve EAX. } void StubCode::GenerateDeoptimizeStub(Assembler* assembler) { GenerateDeoptimizationSequence(assembler, false); // Don't preserve EAX. } void StubCode::GenerateMegamorphicMissStub(Assembler* assembler) { __ EnterStubFrame(); // Load the receiver into EAX. The argument count in the arguments // descriptor in EDX is a smi. __ movl(EAX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); // Two words (saved fp, stub's pc marker) in the stack above the return // address. __ movl(EAX, Address(ESP, EAX, TIMES_2, 2 * kWordSize)); // Preserve IC data and arguments descriptor. __ pushl(ECX); __ pushl(EDX); const Immediate& raw_null = Immediate(reinterpret_cast(Instructions::null())); __ pushl(raw_null); // Space for the result of the runtime call. __ pushl(EAX); // Pass receiver. __ pushl(ECX); // Pass IC data. __ pushl(EDX); // Pass arguments descriptor. __ CallRuntime(kMegamorphicCacheMissHandlerRuntimeEntry, 3); // Discard arguments. __ popl(EAX); __ popl(EAX); __ popl(EAX); __ popl(EAX); // Return value from the runtime call (function). __ popl(EDX); // Restore arguments descriptor. __ popl(ECX); // Restore IC data. __ LeaveFrame(); __ movl(EBX, FieldAddress(EAX, Function::instructions_offset())); __ addl(EBX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ jmp(EBX); } // Called for inline allocation of arrays. // Input parameters: // EDX : Array length as Smi (must be preserved). // ECX : array element type (either NULL or an instantiated type). // Uses EAX, EBX, ECX, EDI as temporary registers. // The newly allocated object is returned in EAX. void StubCode::GeneratePatchableAllocateArrayStub(Assembler* assembler, uword* entry_patch_offset, uword* patch_code_pc_offset) { *entry_patch_offset = assembler->CodeSize(); Label slow_case; const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); // Compute the size to be allocated, it is based on the array length // and is computed as: // RoundedAllocationSize((array_length * kwordSize) + sizeof(RawArray)). // Assert that length is a Smi. __ testl(EDX, Immediate(kSmiTagMask)); if (FLAG_use_slow_path) { __ jmp(&slow_case); } else { __ j(NOT_ZERO, &slow_case); } __ cmpl(EDX, Immediate(0)); __ j(LESS, &slow_case); // Check for maximum allowed length. const Immediate& max_len = Immediate(reinterpret_cast(Smi::New(Array::kMaxElements))); __ cmpl(EDX, max_len); __ j(GREATER, &slow_case); const intptr_t fixed_size = sizeof(RawArray) + kObjectAlignment - 1; __ leal(EDI, Address(EDX, TIMES_2, fixed_size)); // EDX is Smi. ASSERT(kSmiTagShift == 1); __ andl(EDI, Immediate(-kObjectAlignment)); // ECX: array element type. // EDX: array length as Smi. // EDI: allocation size. Isolate* isolate = Isolate::Current(); Heap* heap = isolate->heap(); const intptr_t cid = kArrayCid; Heap::Space space = heap->SpaceForAllocation(cid); __ movl(EAX, Address::Absolute(heap->TopAddress(space))); __ movl(EBX, EAX); // EDI: allocation size. __ addl(EBX, EDI); __ j(CARRY, &slow_case); // Check if the allocation fits into the remaining space. // EAX: potential new object start. // EBX: potential next object start. // EDI: allocation size. // ECX: array element type. // EDX: array length as Smi). __ cmpl(EBX, Address::Absolute(heap->EndAddress(space))); __ j(ABOVE_EQUAL, &slow_case); // Successfully allocated the object(s), now update top to point to // next object start and initialize the object. __ movl(Address::Absolute(heap->TopAddress(space)), EBX); __ addl(EAX, Immediate(kHeapObjectTag)); __ UpdateAllocationStatsWithSize(cid, EDI, kNoRegister, space); // Initialize the tags. // EAX: new object start as a tagged pointer. // EBX: new object end address. // EDI: allocation size. // ECX: array element type. // EDX: array length as Smi. { Label size_tag_overflow, done; __ cmpl(EDI, Immediate(RawObject::SizeTag::kMaxSizeTag)); __ j(ABOVE, &size_tag_overflow, Assembler::kNearJump); __ shll(EDI, Immediate(RawObject::kSizeTagPos - kObjectAlignmentLog2)); __ jmp(&done, Assembler::kNearJump); __ Bind(&size_tag_overflow); __ movl(EDI, Immediate(0)); __ Bind(&done); // Get the class index and insert it into the tags. __ orl(EDI, Immediate(RawObject::ClassIdTag::encode(cid))); __ movl(FieldAddress(EAX, Array::tags_offset()), EDI); // Tags. } // EAX: new object start as a tagged pointer. // EBX: new object end address. // ECX: array element type. // EDX: Array length as Smi (preserved). // Store the type argument field. __ InitializeFieldNoBarrier(EAX, FieldAddress(EAX, Array::type_arguments_offset()), ECX); // Set the length field. __ InitializeFieldNoBarrier(EAX, FieldAddress(EAX, Array::length_offset()), EDX); // Initialize all array elements to raw_null. // EAX: new object start as a tagged pointer. // EBX: new object end address. // EDI: iterator which initially points to the start of the variable // data area to be initialized. // ECX: array element type. // EDX: array length as Smi. __ leal(EDI, FieldAddress(EAX, sizeof(RawArray))); Label done; Label init_loop; __ Bind(&init_loop); __ cmpl(EDI, EBX); __ j(ABOVE_EQUAL, &done, Assembler::kNearJump); // No generational barrier needed, since we are storing null. __ InitializeFieldNoBarrier(EAX, Address(EDI, 0), Object::null_object()); __ addl(EDI, Immediate(kWordSize)); __ jmp(&init_loop, Assembler::kNearJump); __ Bind(&done); __ ret(); // returns the newly allocated object in EAX. // Unable to allocate the array using the fast inline code, just call // into the runtime. __ Bind(&slow_case); // Create a stub frame as we are pushing some objects on the stack before // calling into the runtime. __ EnterStubFrame(); __ pushl(raw_null); // Setup space on stack for return value. __ pushl(EDX); // Array length as Smi. __ pushl(ECX); // Element type. __ CallRuntime(kAllocateArrayRuntimeEntry, 2); __ popl(EAX); // Pop element type argument. __ popl(EDX); // Pop array length argument (preserved). __ popl(EAX); // Pop return value from return slot. __ LeaveFrame(); __ ret(); // Emit function patching code. This will be swapped with the first 5 bytes // at entry point. *patch_code_pc_offset = assembler->CodeSize(); StubCode* stub_code = Isolate::Current()->stub_code(); __ jmp(&stub_code->FixAllocateArrayStubTargetLabel()); } // Called when invoking dart code from C++ (VM code). // Input parameters: // ESP : points to return address. // ESP + 4 : entrypoint of the dart function to call. // ESP + 8 : arguments descriptor array. // ESP + 12 : arguments array. // Uses EAX, EDX, ECX, EDI as temporary registers. void StubCode::GenerateInvokeDartCodeStub(Assembler* assembler) { const intptr_t kEntryPointOffset = 2 * kWordSize; const intptr_t kArgumentsDescOffset = 3 * kWordSize; const intptr_t kArgumentsOffset = 4 * kWordSize; // Save frame pointer coming in. __ EnterFrame(0); // Save C++ ABI callee-saved registers. __ pushl(EBX); __ pushl(ESI); __ pushl(EDI); __ LoadIsolate(ESI); // Save the current VMTag on the stack. __ movl(ECX, Address(ESI, Isolate::vm_tag_offset())); __ pushl(ECX); // Mark that the isolate is executing Dart code. __ movl(Address(ESI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); // Save the top exit frame info. Use EDX as a temporary register. // StackFrameIterator reads the top exit frame info saved in this frame. // The constant kExitLinkSlotFromEntryFp must be kept in sync with the // code below. ASSERT(kExitLinkSlotFromEntryFp == -5); __ movl(EDX, Address(ESI, Isolate::top_exit_frame_info_offset())); __ pushl(EDX); __ movl(Address(ESI, Isolate::top_exit_frame_info_offset()), Immediate(0)); // Load arguments descriptor array into EDX. __ movl(EDX, Address(EBP, kArgumentsDescOffset)); __ movl(EDX, Address(EDX, VMHandles::kOffsetOfRawPtrInHandle)); // Load number of arguments into EBX. __ movl(EBX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); __ SmiUntag(EBX); // Set up arguments for the dart call. Label push_arguments; Label done_push_arguments; __ testl(EBX, EBX); // check if there are arguments. __ j(ZERO, &done_push_arguments, Assembler::kNearJump); __ movl(EAX, Immediate(0)); // Compute address of 'arguments array' data area into EDI. __ movl(EDI, Address(EBP, kArgumentsOffset)); __ movl(EDI, Address(EDI, VMHandles::kOffsetOfRawPtrInHandle)); __ leal(EDI, FieldAddress(EDI, Array::data_offset())); __ Bind(&push_arguments); __ movl(ECX, Address(EDI, EAX, TIMES_4, 0)); __ pushl(ECX); __ incl(EAX); __ cmpl(EAX, EBX); __ j(LESS, &push_arguments, Assembler::kNearJump); __ Bind(&done_push_arguments); // Call the dart code entrypoint. __ call(Address(EBP, kEntryPointOffset)); // Reread the arguments descriptor array to obtain the number of passed // arguments. __ movl(EDX, Address(EBP, kArgumentsDescOffset)); __ movl(EDX, Address(EDX, VMHandles::kOffsetOfRawPtrInHandle)); __ movl(EDX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); // Get rid of arguments pushed on the stack. __ leal(ESP, Address(ESP, EDX, TIMES_2, 0)); // EDX is a Smi. // Restore the saved top exit frame info back into the Isolate structure. __ LoadIsolate(ESI); __ popl(Address(ESI, Isolate::top_exit_frame_info_offset())); // Restore the current VMTag from the stack. __ popl(Address(ESI, Isolate::vm_tag_offset())); // Restore C++ ABI callee-saved registers. __ popl(EDI); __ popl(ESI); __ popl(EBX); // Restore the frame pointer. __ LeaveFrame(); __ ret(); } // Called for inline allocation of contexts. // Input: // EDX: number of context variables. // Output: // EAX: new allocated RawContext object. // EBX and EDX are destroyed. void StubCode::GenerateAllocateContextStub(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); if (FLAG_inline_alloc) { Label slow_case; Isolate* isolate = Isolate::Current(); Heap* heap = isolate->heap(); // First compute the rounded instance size. // EDX: number of context variables. intptr_t fixed_size = (sizeof(RawContext) + kObjectAlignment - 1); __ leal(EBX, Address(EDX, TIMES_4, fixed_size)); __ andl(EBX, Immediate(-kObjectAlignment)); // Now allocate the object. // EDX: number of context variables. const intptr_t cid = kContextCid; Heap::Space space = heap->SpaceForAllocation(cid); __ movl(EAX, Address::Absolute(heap->TopAddress(space))); __ addl(EBX, EAX); // Check if the allocation fits into the remaining space. // EAX: potential new object. // EBX: potential next object start. // EDX: number of context variables. __ cmpl(EBX, Address::Absolute(heap->EndAddress(space))); if (FLAG_use_slow_path) { __ jmp(&slow_case); } else { #if defined(DEBUG) static const bool kJumpLength = Assembler::kFarJump; #else static const bool kJumpLength = Assembler::kNearJump; #endif // DEBUG __ j(ABOVE_EQUAL, &slow_case, kJumpLength); } // Successfully allocated the object, now update top to point to // next object start and initialize the object. // EAX: new object. // EBX: next object start. // EDX: number of context variables. __ movl(Address::Absolute(heap->TopAddress(space)), EBX); __ addl(EAX, Immediate(kHeapObjectTag)); // EBX: Size of allocation in bytes. __ subl(EBX, EAX); __ UpdateAllocationStatsWithSize(cid, EBX, kNoRegister, space); // Calculate the size tag. // EAX: new object. // EDX: number of context variables. { Label size_tag_overflow, done; __ leal(EBX, Address(EDX, TIMES_4, fixed_size)); __ andl(EBX, Immediate(-kObjectAlignment)); __ cmpl(EBX, Immediate(RawObject::SizeTag::kMaxSizeTag)); __ j(ABOVE, &size_tag_overflow, Assembler::kNearJump); __ shll(EBX, Immediate(RawObject::kSizeTagPos - kObjectAlignmentLog2)); __ jmp(&done); __ Bind(&size_tag_overflow); // Set overflow size tag value. __ movl(EBX, Immediate(0)); __ Bind(&done); // EAX: new object. // EDX: number of context variables. // EBX: size and bit tags. __ orl(EBX, Immediate(RawObject::ClassIdTag::encode(cid))); __ movl(FieldAddress(EAX, Context::tags_offset()), EBX); // Tags. } // Setup up number of context variables field. // EAX: new object. // EDX: number of context variables as integer value (not object). __ movl(FieldAddress(EAX, Context::num_variables_offset()), EDX); // Setup the parent field. // EAX: new object. // EDX: number of context variables. // No generational barrier needed, since we are storing null. __ InitializeFieldNoBarrier(EAX, FieldAddress(EAX, Context::parent_offset()), Object::null_object()); // Initialize the context variables. // EAX: new object. // EDX: number of context variables. { Label loop, entry; __ leal(EBX, FieldAddress(EAX, Context::variable_offset(0))); __ jmp(&entry, Assembler::kNearJump); __ Bind(&loop); __ decl(EDX); // No generational barrier needed, since we are storing null. __ InitializeFieldNoBarrier(EAX, Address(EBX, EDX, TIMES_4, 0), Object::null_object()); __ Bind(&entry); __ cmpl(EDX, Immediate(0)); __ j(NOT_EQUAL, &loop, Assembler::kNearJump); } // Done allocating and initializing the context. // EAX: new object. __ ret(); __ Bind(&slow_case); } // Create a stub frame as we are pushing some objects on the stack before // calling into the runtime. __ EnterStubFrame(); __ pushl(raw_null); // Setup space on stack for return value. __ SmiTag(EDX); __ pushl(EDX); __ CallRuntime(kAllocateContextRuntimeEntry, 1); // Allocate context. __ popl(EAX); // Pop number of context variables argument. __ popl(EAX); // Pop the new context object. // EAX: new object // Restore the frame pointer. __ LeaveFrame(); __ ret(); } DECLARE_LEAF_RUNTIME_ENTRY(void, StoreBufferBlockProcess, Isolate* isolate); // Helper stub to implement Assembler::StoreIntoObject. // Input parameters: // EDX: Address being stored void StubCode::GenerateUpdateStoreBufferStub(Assembler* assembler) { // Save values being destroyed. __ pushl(EAX); __ pushl(ECX); Label add_to_buffer; // Check whether this object has already been remembered. Skip adding to the // store buffer if the object is in the store buffer already. // Spilled: EAX, ECX // EDX: Address being stored Label reload; __ Bind(&reload); __ movl(EAX, FieldAddress(EDX, Object::tags_offset())); __ testl(EAX, Immediate(1 << RawObject::kRememberedBit)); __ j(EQUAL, &add_to_buffer, Assembler::kNearJump); __ popl(ECX); __ popl(EAX); __ ret(); // Update the tags that this object has been remembered. // EDX: Address being stored // EAX: Current tag value __ Bind(&add_to_buffer); __ movl(ECX, EAX); __ orl(ECX, Immediate(1 << RawObject::kRememberedBit)); // Compare the tag word with EAX, update to ECX if unchanged. __ LockCmpxchgl(FieldAddress(EDX, Object::tags_offset()), ECX); __ j(NOT_EQUAL, &reload); // Load the isolate. // Spilled: EAX, ECX // EDX: Address being stored __ LoadIsolate(EAX); // Load the StoreBuffer block out of the isolate. Then load top_ out of the // StoreBufferBlock and add the address to the pointers_. // Spilled: EAX, ECX // EDX: Address being stored // EAX: Isolate __ movl(EAX, Address(EAX, Isolate::store_buffer_offset())); __ movl(ECX, Address(EAX, StoreBufferBlock::top_offset())); __ movl(Address(EAX, ECX, TIMES_4, StoreBufferBlock::pointers_offset()), EDX); // Increment top_ and check for overflow. // Spilled: EAX, ECX // ECX: top_ // EAX: StoreBufferBlock Label L; __ incl(ECX); __ movl(Address(EAX, StoreBufferBlock::top_offset()), ECX); __ cmpl(ECX, Immediate(StoreBufferBlock::kSize)); // Restore values. // Spilled: EAX, ECX __ popl(ECX); __ popl(EAX); __ j(EQUAL, &L, Assembler::kNearJump); __ ret(); // Handle overflow: Call the runtime leaf function. __ Bind(&L); // Setup frame, push callee-saved registers. __ EnterCallRuntimeFrame(1 * kWordSize); __ LoadIsolate(EDX); __ movl(Address(ESP, 0), EDX); // Push the isolate as the only argument. __ CallRuntime(kStoreBufferBlockProcessRuntimeEntry, 1); // Restore callee-saved registers, tear down frame. __ LeaveCallRuntimeFrame(); __ ret(); } // Called for inline allocation of objects. // Input parameters: // ESP + 4 : type arguments object (only if class is parameterized). // ESP : points to return address. // Uses EAX, EBX, ECX, EDX, EDI as temporary registers. // Returns patch_code_pc offset where patching code for disabling the stub // has been generated (similar to regularly generated Dart code). void StubCode::GenerateAllocationStubForClass( Assembler* assembler, const Class& cls, uword* entry_patch_offset, uword* patch_code_pc_offset) { *entry_patch_offset = assembler->CodeSize(); const intptr_t kObjectTypeArgumentsOffset = 1 * kWordSize; const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); // The generated code is different if the class is parameterized. const bool is_cls_parameterized = cls.NumTypeArguments() > 0; ASSERT(!is_cls_parameterized || (cls.type_arguments_field_offset() != Class::kNoTypeArguments)); // kInlineInstanceSize is a constant used as a threshold for determining // when the object initialization should be done as a loop or as // straight line code. const int kInlineInstanceSize = 12; // In words. const intptr_t instance_size = cls.instance_size(); ASSERT(instance_size > 0); if (is_cls_parameterized) { __ movl(EDX, Address(ESP, kObjectTypeArgumentsOffset)); // EDX: instantiated type arguments. } if (FLAG_inline_alloc && Heap::IsAllocatableInNewSpace(instance_size)) { Label slow_case; // Allocate the object and update top to point to // next object start and initialize the allocated object. // EDX: instantiated type arguments (if is_cls_parameterized). Heap* heap = Isolate::Current()->heap(); Heap::Space space = heap->SpaceForAllocation(cls.id()); __ movl(EAX, Address::Absolute(heap->TopAddress(space))); __ leal(EBX, Address(EAX, instance_size)); // Check if the allocation fits into the remaining space. // EAX: potential new object start. // EBX: potential next object start. __ cmpl(EBX, Address::Absolute(heap->EndAddress(space))); if (FLAG_use_slow_path) { __ jmp(&slow_case); } else { __ j(ABOVE_EQUAL, &slow_case); } __ movl(Address::Absolute(heap->TopAddress(space)), EBX); __ UpdateAllocationStats(cls.id(), ECX, space); // EAX: new object start (untagged). // EBX: next object start. // EDX: new object type arguments (if is_cls_parameterized). // Set the tags. uword tags = 0; tags = RawObject::SizeTag::update(instance_size, tags); ASSERT(cls.id() != kIllegalCid); tags = RawObject::ClassIdTag::update(cls.id(), tags); __ movl(Address(EAX, Instance::tags_offset()), Immediate(tags)); __ addl(EAX, Immediate(kHeapObjectTag)); // Initialize the remaining words of the object. // EAX: new object (tagged). // EBX: next object start. // EDX: new object type arguments (if is_cls_parameterized). // First try inlining the initialization without a loop. if (instance_size < (kInlineInstanceSize * kWordSize)) { // Check if the object contains any non-header fields. // Small objects are initialized using a consecutive set of writes. for (intptr_t current_offset = Instance::NextFieldOffset(); current_offset < instance_size; current_offset += kWordSize) { __ InitializeFieldNoBarrier(EAX, FieldAddress(EAX, current_offset), Object::null_object()); } } else { __ leal(ECX, FieldAddress(EAX, Instance::NextFieldOffset())); // Loop until the whole object is initialized. // EAX: new object (tagged). // EBX: next object start. // ECX: next word to be initialized. // EDX: new object type arguments (if is_cls_parameterized). Label init_loop; Label done; __ Bind(&init_loop); __ cmpl(ECX, EBX); __ j(ABOVE_EQUAL, &done, Assembler::kNearJump); __ InitializeFieldNoBarrier(EAX, Address(ECX, 0), Object::null_object()); __ addl(ECX, Immediate(kWordSize)); __ jmp(&init_loop, Assembler::kNearJump); __ Bind(&done); } if (is_cls_parameterized) { // EDX: new object type arguments. // Set the type arguments in the new object. intptr_t offset = cls.type_arguments_field_offset(); // TODO(koda): Figure out why previous content is sometimes null here. __ InitializeFieldNoBarrier(EAX, FieldAddress(EAX, offset), EDX); } // Done allocating and initializing the instance. // EAX: new object (tagged). __ ret(); __ Bind(&slow_case); } // If is_cls_parameterized: // EDX: new object type arguments. // Create a stub frame as we are pushing some objects on the stack before // calling into the runtime. __ EnterStubFrame(); __ pushl(raw_null); // Setup space on stack for return value. __ PushObject(cls); // Push class of object to be allocated. if (is_cls_parameterized) { __ pushl(EDX); // Push type arguments of object to be allocated. } else { __ pushl(raw_null); // Push null type arguments. } __ CallRuntime(kAllocateObjectRuntimeEntry, 2); // Allocate object. __ popl(EAX); // Pop argument (type arguments of object). __ popl(EAX); // Pop argument (class of object). __ popl(EAX); // Pop result (newly allocated object). // EAX: new object // Restore the frame pointer. __ LeaveFrame(); __ ret(); // Emit function patching code. This will be swapped with the first 5 bytes // at entry point. *patch_code_pc_offset = assembler->CodeSize(); StubCode* stub_code = Isolate::Current()->stub_code(); __ jmp(&stub_code->FixAllocationStubTargetLabel()); } // Called for invoking "dynamic noSuchMethod(Invocation invocation)" function // from the entry code of a dart function after an error in passed argument // name or number is detected. // Input parameters: // ESP : points to return address. // ESP + 4 : address of last argument. // EDX : arguments descriptor array. // Uses EAX, EBX, EDI as temporary registers. void StubCode::GenerateCallClosureNoSuchMethodStub(Assembler* assembler) { __ EnterStubFrame(); // Load the receiver. __ movl(EDI, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); __ movl(EAX, Address(EBP, EDI, TIMES_2, kParamEndSlotFromFp * kWordSize)); const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ pushl(raw_null); // Setup space on stack for result from noSuchMethod. __ pushl(EAX); // Receiver. __ pushl(EDX); // Arguments descriptor array. __ movl(EDX, EDI); // EDX: Smi-tagged arguments array length. PushArgumentsArray(assembler); const intptr_t kNumArgs = 3; __ CallRuntime(kInvokeClosureNoSuchMethodRuntimeEntry, kNumArgs); // noSuchMethod on closures always throws an error, so it will never return. __ int3(); } // Cannot use function object from ICData as it may be the inlined // function and not the top-scope function. void StubCode::GenerateOptimizedUsageCounterIncrement(Assembler* assembler) { Register ic_reg = ECX; Register func_reg = EDI; if (FLAG_trace_optimized_ic_calls) { __ EnterStubFrame(); __ pushl(func_reg); // Preserve __ pushl(ic_reg); // Preserve. __ pushl(ic_reg); // Argument. __ pushl(func_reg); // Argument. __ CallRuntime(kTraceICCallRuntimeEntry, 2); __ popl(EAX); // Discard argument; __ popl(EAX); // Discard argument; __ popl(ic_reg); // Restore. __ popl(func_reg); // Restore. __ LeaveFrame(); } __ incl(FieldAddress(func_reg, Function::usage_counter_offset())); } // Loads function into 'temp_reg'. void StubCode::GenerateUsageCounterIncrement(Assembler* assembler, Register temp_reg) { Register ic_reg = ECX; Register func_reg = temp_reg; ASSERT(ic_reg != func_reg); __ Comment("Increment function counter"); __ movl(func_reg, FieldAddress(ic_reg, ICData::owner_offset())); __ incl(FieldAddress(func_reg, Function::usage_counter_offset())); } // Note: ECX must be preserved. // Attempt a quick Smi operation for known operations ('kind'). The ICData // must have been primed with a Smi/Smi check that will be used for counting // the invocations. static void EmitFastSmiOp(Assembler* assembler, Token::Kind kind, intptr_t num_args, Label* not_smi_or_overflow) { __ Comment("Fast Smi op"); ASSERT(num_args == 2); __ movl(EDI, Address(ESP, + 1 * kWordSize)); // Right __ movl(EAX, Address(ESP, + 2 * kWordSize)); // Left __ movl(EBX, EDI); __ orl(EBX, EAX); __ testl(EBX, Immediate(kSmiTagMask)); __ j(NOT_ZERO, not_smi_or_overflow, Assembler::kNearJump); switch (kind) { case Token::kADD: { __ addl(EAX, EDI); __ j(OVERFLOW, not_smi_or_overflow, Assembler::kNearJump); break; } case Token::kSUB: { __ subl(EAX, EDI); __ j(OVERFLOW, not_smi_or_overflow, Assembler::kNearJump); break; } case Token::kMUL: { __ SmiUntag(EAX); __ imull(EAX, EDI); __ j(OVERFLOW, not_smi_or_overflow, Assembler::kNearJump); break; } case Token::kEQ: { Label done, is_true; __ cmpl(EAX, EDI); __ j(EQUAL, &is_true, Assembler::kNearJump); __ LoadObject(EAX, Bool::False()); __ jmp(&done, Assembler::kNearJump); __ Bind(&is_true); __ LoadObject(EAX, Bool::True()); __ Bind(&done); break; } default: UNIMPLEMENTED(); } // ECX: IC data object. __ movl(EBX, FieldAddress(ECX, ICData::ic_data_offset())); // EBX: ic_data_array with check entries: classes and target functions. __ leal(EBX, FieldAddress(EBX, Array::data_offset())); #if defined(DEBUG) // Check that first entry is for Smi/Smi. Label error, ok; const Immediate& imm_smi_cid = Immediate(reinterpret_cast(Smi::New(kSmiCid))); __ cmpl(Address(EBX, 0 * kWordSize), imm_smi_cid); __ j(NOT_EQUAL, &error, Assembler::kNearJump); __ cmpl(Address(EBX, 1 * kWordSize), imm_smi_cid); __ j(EQUAL, &ok, Assembler::kNearJump); __ Bind(&error); __ Stop("Incorrect IC data"); __ Bind(&ok); #endif // Update counter. const intptr_t count_offset = ICData::CountIndexFor(num_args) * kWordSize; __ movl(ECX, Address(EBX, count_offset)); __ addl(ECX, Immediate(Smi::RawValue(1))); __ movl(EDI, Immediate(Smi::RawValue(Smi::kMaxValue))); __ cmovno(EDI, ECX); __ StoreIntoSmiField(Address(EBX, count_offset), EDI); __ ret(); } // Generate inline cache check for 'num_args'. // ECX: Inline cache data object. // TOS(0): return address // Control flow: // - If receiver is null -> jump to IC miss. // - If receiver is Smi -> load Smi class. // - If receiver is not-Smi -> load receiver's class. // - Check if 'num_args' (including receiver) match any IC data group. // - Match found -> jump to target. // - Match not found -> jump to IC miss. void StubCode::GenerateNArgsCheckInlineCacheStub( Assembler* assembler, intptr_t num_args, const RuntimeEntry& handle_ic_miss, Token::Kind kind, RangeCollectionMode range_collection_mode) { ASSERT(num_args > 0); #if defined(DEBUG) { Label ok; // Check that the IC data array has NumArgsTested() == num_args. // 'NumArgsTested' is stored in the least significant bits of 'state_bits'. __ movl(EBX, FieldAddress(ECX, ICData::state_bits_offset())); ASSERT(ICData::NumArgsTestedShift() == 0); // No shift needed. __ andl(EBX, Immediate(ICData::NumArgsTestedMask())); __ cmpl(EBX, Immediate(num_args)); __ j(EQUAL, &ok, Assembler::kNearJump); __ Stop("Incorrect stub for IC data"); __ Bind(&ok); } #endif // DEBUG __ Comment("Check single stepping"); Label stepping, done_stepping; uword single_step_address = reinterpret_cast(Isolate::Current()) + Isolate::single_step_offset(); __ cmpb(Address::Absolute(single_step_address), Immediate(0)); __ j(NOT_EQUAL, &stepping); __ Bind(&done_stepping); __ Comment("Range feedback collection"); Label not_smi_or_overflow; if (range_collection_mode == kCollectRanges) { ASSERT((num_args == 1) || (num_args == 2)); if (num_args == 2) { __ movl(EAX, Address(ESP, + 2 * kWordSize)); __ UpdateRangeFeedback(EAX, 0, ECX, EBX, EDI, ESI, ¬_smi_or_overflow); } __ movl(EAX, Address(ESP, + 1 * kWordSize)); __ UpdateRangeFeedback(EAX, (num_args - 1), ECX, EBX, EDI, ESI, ¬_smi_or_overflow); } if (kind != Token::kILLEGAL) { EmitFastSmiOp(assembler, kind, num_args, ¬_smi_or_overflow); } __ Bind(¬_smi_or_overflow); __ Comment("Extract ICData initial values and receiver cid"); // ECX: IC data object (preserved). // Load arguments descriptor into EDX. __ movl(EDX, FieldAddress(ECX, ICData::arguments_descriptor_offset())); // Loop that checks if there is an IC data match. // ECX: IC data object (preserved). __ movl(EBX, FieldAddress(ECX, ICData::ic_data_offset())); // EBX: ic_data_array with check entries: classes and target functions. __ leal(EBX, FieldAddress(EBX, Array::data_offset())); // EBX: points directly to the first ic data array element. // Get the receiver's class ID (first read number of arguments from // arguments descriptor array and then access the receiver from the stack). __ movl(EAX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); __ movl(EDI, Address(ESP, EAX, TIMES_2, 0)); // EAX (argument_count) is smi. __ LoadTaggedClassIdMayBeSmi(EAX, EDI); // EAX: receiver's class ID (smi). __ movl(EDI, Address(EBX, 0)); // First class id (smi) to check. Label loop, update, test, found; __ jmp(&test); __ Comment("ICData loop"); __ Bind(&loop); for (int i = 0; i < num_args; i++) { if (i > 0) { // If not the first, load the next argument's class ID. __ movl(EAX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); __ movl(EDI, Address(ESP, EAX, TIMES_2, - i * kWordSize)); __ LoadTaggedClassIdMayBeSmi(EAX, EDI); // EAX: next argument class ID (smi). __ movl(EDI, Address(EBX, i * kWordSize)); // EDI: next class ID to check (smi). } __ cmpl(EAX, EDI); // Class id match? if (i < (num_args - 1)) { __ j(NOT_EQUAL, &update); // Continue. } else { // Last check, all checks before matched. __ j(EQUAL, &found, Assembler::kNearJump); // Break. } } __ Bind(&update); // Reload receiver class ID. It has not been destroyed when num_args == 1. if (num_args > 1) { __ movl(EAX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); __ movl(EDI, Address(ESP, EAX, TIMES_2, 0)); __ LoadTaggedClassIdMayBeSmi(EAX, EDI); } const intptr_t entry_size = ICData::TestEntryLengthFor(num_args) * kWordSize; __ addl(EBX, Immediate(entry_size)); // Next entry. __ movl(EDI, Address(EBX, 0)); // Next class ID. __ Bind(&test); __ cmpl(EDI, Immediate(Smi::RawValue(kIllegalCid))); // Done? __ j(NOT_EQUAL, &loop, Assembler::kNearJump); __ Comment("IC miss"); const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); // Compute address of arguments (first read number of arguments from // arguments descriptor array and then compute address on the stack). __ movl(EAX, FieldAddress(EDX, ArgumentsDescriptor::count_offset())); __ leal(EAX, Address(ESP, EAX, TIMES_2, 0)); // EAX is Smi. // Create a stub frame as we are pushing some objects on the stack before // calling into the runtime. __ EnterStubFrame(); __ pushl(EDX); // Preserve arguments descriptor array. __ pushl(ECX); // Preserve IC data object. __ pushl(raw_null); // Setup space on stack for result (target code object). // Push call arguments. for (intptr_t i = 0; i < num_args; i++) { __ movl(EBX, Address(EAX, -kWordSize * i)); __ pushl(EBX); } __ pushl(ECX); // Pass IC data object. __ CallRuntime(handle_ic_miss, num_args + 1); // Remove the call arguments pushed earlier, including the IC data object. for (intptr_t i = 0; i < num_args + 1; i++) { __ popl(EAX); } __ popl(EAX); // Pop returned function object into EAX. __ popl(ECX); // Restore IC data array. __ popl(EDX); // Restore arguments descriptor array. __ LeaveFrame(); Label call_target_function; __ jmp(&call_target_function); __ Bind(&found); // EBX: Pointer to an IC data check group. const intptr_t target_offset = ICData::TargetIndexFor(num_args) * kWordSize; const intptr_t count_offset = ICData::CountIndexFor(num_args) * kWordSize; __ Comment("Update caller's counter"); __ movl(EAX, Address(EBX, count_offset)); __ addl(EAX, Immediate(Smi::RawValue(1))); __ movl(EDI, Immediate(Smi::RawValue(Smi::kMaxValue))); __ cmovno(EDI, EAX); __ StoreIntoSmiField(Address(EBX, count_offset), EDI); __ movl(EAX, Address(EBX, target_offset)); __ Bind(&call_target_function); __ Comment("Call target"); // EAX: Target function. __ movl(EBX, FieldAddress(EAX, Function::instructions_offset())); __ addl(EBX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); if (range_collection_mode == kCollectRanges) { __ movl(EDI, Address(ESP, + 1 * kWordSize)); if (num_args == 2) { __ movl(ESI, Address(ESP, + 2 * kWordSize)); } __ EnterStubFrame(); __ pushl(ECX); if (num_args == 2) { __ pushl(ESI); } __ pushl(EDI); __ call(EBX); __ movl(ECX, Address(EBP, kFirstLocalSlotFromFp * kWordSize)); Label done; __ UpdateRangeFeedback(EAX, 2, ECX, EBX, EDI, ESI, &done); __ Bind(&done); __ LeaveFrame(); __ ret(); } else { __ jmp(EBX); } __ Bind(&stepping); __ EnterStubFrame(); __ pushl(ECX); __ CallRuntime(kSingleStepHandlerRuntimeEntry, 0); __ popl(ECX); __ LeaveFrame(); __ jmp(&done_stepping); } // Use inline cache data array to invoke the target or continue in inline // cache miss handler. Stub for 1-argument check (receiver class). // ECX: Inline cache data object. // TOS(0): Return address. // Inline cache data object structure: // 0: function-name // 1: N, number of arguments checked. // 2 .. (length - 1): group of checks, each check containing: // - N classes. // - 1 target function. void StubCode::GenerateOneArgCheckInlineCacheStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } void StubCode::GenerateTwoArgsCheckInlineCacheStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } void StubCode::GenerateThreeArgsCheckInlineCacheStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 3, kInlineCacheMissHandlerThreeArgsRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } void StubCode::GenerateSmiAddInlineCacheStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry, Token::kADD, kCollectRanges); } void StubCode::GenerateSmiSubInlineCacheStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry, Token::kSUB, kCollectRanges); } void StubCode::GenerateSmiEqualInlineCacheStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry, Token::kEQ, kIgnoreRanges); } void StubCode::GenerateUnaryRangeCollectingInlineCacheStub( Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry, Token::kILLEGAL, kCollectRanges); } void StubCode::GenerateBinaryRangeCollectingInlineCacheStub( Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry, Token::kILLEGAL, kCollectRanges); } // Use inline cache data array to invoke the target or continue in inline // cache miss handler. Stub for 1-argument check (receiver class). // EDI: function which counter needs to be incremented. // ECX: Inline cache data object. // TOS(0): Return address. // Inline cache data object structure: // 0: function-name // 1: N, number of arguments checked. // 2 .. (length - 1): group of checks, each check containing: // - N classes. // - 1 target function. void StubCode::GenerateOneArgOptimizedCheckInlineCacheStub( Assembler* assembler) { GenerateOptimizedUsageCounterIncrement(assembler); GenerateNArgsCheckInlineCacheStub(assembler, 1, kInlineCacheMissHandlerOneArgRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } void StubCode::GenerateTwoArgsOptimizedCheckInlineCacheStub( Assembler* assembler) { GenerateOptimizedUsageCounterIncrement(assembler); GenerateNArgsCheckInlineCacheStub(assembler, 2, kInlineCacheMissHandlerTwoArgsRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } void StubCode::GenerateThreeArgsOptimizedCheckInlineCacheStub( Assembler* assembler) { GenerateOptimizedUsageCounterIncrement(assembler); GenerateNArgsCheckInlineCacheStub(assembler, 3, kInlineCacheMissHandlerThreeArgsRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } // Intermediary stub between a static call and its target. ICData contains // the target function and the call count. // ECX: ICData void StubCode::GenerateZeroArgsUnoptimizedStaticCallStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); #if defined(DEBUG) { Label ok; // Check that the IC data array has NumArgsTested() == num_args. // 'NumArgsTested' is stored in the least significant bits of 'state_bits'. __ movl(EBX, FieldAddress(ECX, ICData::state_bits_offset())); ASSERT(ICData::NumArgsTestedShift() == 0); // No shift needed. __ andl(EBX, Immediate(ICData::NumArgsTestedMask())); __ cmpl(EBX, Immediate(0)); __ j(EQUAL, &ok, Assembler::kNearJump); __ Stop("Incorrect IC data for unoptimized static call"); __ Bind(&ok); } #endif // DEBUG // Check single stepping. Label stepping, done_stepping; uword single_step_address = reinterpret_cast(Isolate::Current()) + Isolate::single_step_offset(); __ cmpb(Address::Absolute(single_step_address), Immediate(0)); __ j(NOT_EQUAL, &stepping, Assembler::kNearJump); __ Bind(&done_stepping); // ECX: IC data object (preserved). __ movl(EBX, FieldAddress(ECX, ICData::ic_data_offset())); // EBX: ic_data_array with entries: target functions and count. __ leal(EBX, FieldAddress(EBX, Array::data_offset())); // EBX: points directly to the first ic data array element. const intptr_t target_offset = ICData::TargetIndexFor(0) * kWordSize; const intptr_t count_offset = ICData::CountIndexFor(0) * kWordSize; // Increment count for this call. __ movl(EAX, Address(EBX, count_offset)); __ addl(EAX, Immediate(Smi::RawValue(1))); __ movl(EDI, Immediate(Smi::RawValue(Smi::kMaxValue))); __ cmovno(EDI, EAX); __ StoreIntoSmiField(Address(EBX, count_offset), EDI); // Load arguments descriptor into EDX. __ movl(EDX, FieldAddress(ECX, ICData::arguments_descriptor_offset())); // Get function and call it, if possible. __ movl(EAX, Address(EBX, target_offset)); __ movl(EBX, FieldAddress(EAX, Function::instructions_offset())); // EBX: Target instructions. __ addl(EBX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ jmp(EBX); __ Bind(&stepping); __ EnterStubFrame(); __ pushl(ECX); __ CallRuntime(kSingleStepHandlerRuntimeEntry, 0); __ popl(ECX); __ LeaveFrame(); __ jmp(&done_stepping, Assembler::kNearJump); } void StubCode::GenerateOneArgUnoptimizedStaticCallStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub( assembler, 1, kStaticCallMissHandlerOneArgRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } void StubCode::GenerateTwoArgsUnoptimizedStaticCallStub(Assembler* assembler) { GenerateUsageCounterIncrement(assembler, EBX); GenerateNArgsCheckInlineCacheStub(assembler, 2, kStaticCallMissHandlerTwoArgsRuntimeEntry, Token::kILLEGAL, kIgnoreRanges); } // Stub for compiling a function and jumping to the compiled code. // ECX: IC-Data (for methods). // EDX: Arguments descriptor. // EAX: Function. void StubCode::GenerateLazyCompileStub(Assembler* assembler) { __ EnterStubFrame(); __ pushl(EDX); // Preserve arguments descriptor array. __ pushl(ECX); // Preserve IC data object. __ pushl(EAX); // Pass function. __ CallRuntime(kCompileFunctionRuntimeEntry, 1); __ popl(EAX); // Restore function. __ popl(ECX); // Restore IC data array. __ popl(EDX); // Restore arguments descriptor array. __ LeaveFrame(); __ movl(EAX, FieldAddress(EAX, Function::instructions_offset())); __ addl(EAX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ jmp(EAX); } // ECX: Contains an ICData. void StubCode::GenerateICCallBreakpointStub(Assembler* assembler) { __ EnterStubFrame(); // Save IC data. __ pushl(ECX); // Room for result. Debugger stub returns address of the // unpatched runtime stub. const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ pushl(raw_null); // Room for result. __ CallRuntime(kBreakpointRuntimeHandlerRuntimeEntry, 0); __ popl(EAX); // Address of original stub. __ popl(ECX); // Restore IC data. __ LeaveFrame(); __ jmp(EAX); // Jump to original stub. } // ECX: Contains Smi 0 (need to preserve a GC-safe value for the lazy compile // stub). // EDX: Contains an arguments descriptor. void StubCode::GenerateClosureCallBreakpointStub(Assembler* assembler) { __ EnterStubFrame(); // Save arguments to original stub. __ pushl(ECX); __ pushl(EDX); // Room for result. Debugger stub returns address of the // unpatched runtime stub. const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ pushl(raw_null); // Room for result. __ CallRuntime(kBreakpointRuntimeHandlerRuntimeEntry, 0); __ popl(EAX); // Address of original stub. __ popl(EDX); // Restore arguments to original stub. __ popl(ECX); __ LeaveFrame(); __ jmp(EAX); // Jump to original stub. } void StubCode::GenerateRuntimeCallBreakpointStub(Assembler* assembler) { __ EnterStubFrame(); // Room for result. Debugger stub returns address of the // unpatched runtime stub. const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ pushl(raw_null); // Room for result. __ CallRuntime(kBreakpointRuntimeHandlerRuntimeEntry, 0); __ popl(EAX); // Address of original stub. __ LeaveFrame(); __ jmp(EAX); // Jump to original stub. } // Called only from unoptimized code. void StubCode::GenerateDebugStepCheckStub(Assembler* assembler) { // Check single stepping. Label stepping, done_stepping; __ LoadIsolate(EAX); __ movzxb(EAX, Address(EAX, Isolate::single_step_offset())); __ cmpl(EAX, Immediate(0)); __ j(NOT_EQUAL, &stepping, Assembler::kNearJump); __ Bind(&done_stepping); __ ret(); __ Bind(&stepping); __ EnterStubFrame(); __ CallRuntime(kSingleStepHandlerRuntimeEntry, 0); __ LeaveFrame(); __ jmp(&done_stepping, Assembler::kNearJump); } // Used to check class and type arguments. Arguments passed on stack: // TOS + 0: return address. // TOS + 1: instantiator type arguments (can be NULL). // TOS + 2: instance. // TOS + 3: SubtypeTestCache. // Result in ECX: null -> not found, otherwise result (true or false). static void GenerateSubtypeNTestCacheStub(Assembler* assembler, int n) { ASSERT((1 <= n) && (n <= 3)); const intptr_t kInstantiatorTypeArgumentsInBytes = 1 * kWordSize; const intptr_t kInstanceOffsetInBytes = 2 * kWordSize; const intptr_t kCacheOffsetInBytes = 3 * kWordSize; const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ movl(EAX, Address(ESP, kInstanceOffsetInBytes)); if (n > 1) { // Get instance type arguments. __ LoadClass(ECX, EAX, EBX); // Compute instance type arguments into EBX. Label has_no_type_arguments; __ movl(EBX, raw_null); __ movl(EDI, FieldAddress(ECX, Class::type_arguments_field_offset_in_words_offset())); __ cmpl(EDI, Immediate(Class::kNoTypeArguments)); __ j(EQUAL, &has_no_type_arguments, Assembler::kNearJump); __ movl(EBX, FieldAddress(EAX, EDI, TIMES_4, 0)); __ Bind(&has_no_type_arguments); } __ LoadClassId(ECX, EAX); // EAX: instance, ECX: instance class id. // EBX: instance type arguments (null if none), used only if n > 1. __ movl(EDX, Address(ESP, kCacheOffsetInBytes)); // EDX: SubtypeTestCache. __ movl(EDX, FieldAddress(EDX, SubtypeTestCache::cache_offset())); __ addl(EDX, Immediate(Array::data_offset() - kHeapObjectTag)); Label loop, found, not_found, next_iteration; // EDX: Entry start. // ECX: instance class id. // EBX: instance type arguments. __ SmiTag(ECX); __ Bind(&loop); __ movl(EDI, Address(EDX, kWordSize * SubtypeTestCache::kInstanceClassId)); __ cmpl(EDI, raw_null); __ j(EQUAL, ¬_found, Assembler::kNearJump); __ cmpl(EDI, ECX); if (n == 1) { __ j(EQUAL, &found, Assembler::kNearJump); } else { __ j(NOT_EQUAL, &next_iteration, Assembler::kNearJump); __ movl(EDI, Address(EDX, kWordSize * SubtypeTestCache::kInstanceTypeArguments)); __ cmpl(EDI, EBX); if (n == 2) { __ j(EQUAL, &found, Assembler::kNearJump); } else { __ j(NOT_EQUAL, &next_iteration, Assembler::kNearJump); __ movl(EDI, Address(EDX, kWordSize * SubtypeTestCache::kInstantiatorTypeArguments)); __ cmpl(EDI, Address(ESP, kInstantiatorTypeArgumentsInBytes)); __ j(EQUAL, &found, Assembler::kNearJump); } } __ Bind(&next_iteration); __ addl(EDX, Immediate(kWordSize * SubtypeTestCache::kTestEntryLength)); __ jmp(&loop, Assembler::kNearJump); // Fall through to not found. __ Bind(¬_found); __ movl(ECX, raw_null); __ ret(); __ Bind(&found); __ movl(ECX, Address(EDX, kWordSize * SubtypeTestCache::kTestResult)); __ ret(); } // Used to check class and type arguments. Arguments passed on stack: // TOS + 0: return address. // TOS + 1: instantiator type arguments or NULL. // TOS + 2: instance. // TOS + 3: cache array. // Result in ECX: null -> not found, otherwise result (true or false). void StubCode::GenerateSubtype1TestCacheStub(Assembler* assembler) { GenerateSubtypeNTestCacheStub(assembler, 1); } // Used to check class and type arguments. Arguments passed on stack: // TOS + 0: return address. // TOS + 1: instantiator type arguments or NULL. // TOS + 2: instance. // TOS + 3: cache array. // Result in ECX: null -> not found, otherwise result (true or false). void StubCode::GenerateSubtype2TestCacheStub(Assembler* assembler) { GenerateSubtypeNTestCacheStub(assembler, 2); } // Used to check class and type arguments. Arguments passed on stack: // TOS + 0: return address. // TOS + 1: instantiator type arguments. // TOS + 2: instance. // TOS + 3: cache array. // Result in ECX: null -> not found, otherwise result (true or false). void StubCode::GenerateSubtype3TestCacheStub(Assembler* assembler) { GenerateSubtypeNTestCacheStub(assembler, 3); } // Return the current stack pointer address, used to do stack alignment checks. // TOS + 0: return address // Result in EAX. void StubCode::GenerateGetStackPointerStub(Assembler* assembler) { __ leal(EAX, Address(ESP, kWordSize)); __ ret(); } // Jump to the exception or error handler. // TOS + 0: return address // TOS + 1: program_counter // TOS + 2: stack_pointer // TOS + 3: frame_pointer // TOS + 4: exception object // TOS + 5: stacktrace object // TOS + 6: isolate // No Result. void StubCode::GenerateJumpToExceptionHandlerStub(Assembler* assembler) { ASSERT(kExceptionObjectReg == EAX); ASSERT(kStackTraceObjectReg == EDX); __ movl(EDI, Address(ESP, 6 * kWordSize)); // Load target isolate. __ movl(kStackTraceObjectReg, Address(ESP, 5 * kWordSize)); __ movl(kExceptionObjectReg, Address(ESP, 4 * kWordSize)); __ movl(EBP, Address(ESP, 3 * kWordSize)); // Load target frame_pointer. __ movl(EBX, Address(ESP, 1 * kWordSize)); // Load target PC into EBX. __ movl(ESP, Address(ESP, 2 * kWordSize)); // Load target stack_pointer. // Set tag. __ movl(Address(EDI, Isolate::vm_tag_offset()), Immediate(VMTag::kDartTagId)); // Clear top exit frame. __ movl(Address(EDI, Isolate::top_exit_frame_info_offset()), Immediate(0)); __ jmp(EBX); // Jump to the exception handler code. } // Calls to the runtime to optimize the given function. // EDI: function to be reoptimized. // EDX: argument descriptor (preserved). void StubCode::GenerateOptimizeFunctionStub(Assembler* assembler) { const Immediate& raw_null = Immediate(reinterpret_cast(Object::null())); __ EnterStubFrame(); __ pushl(EDX); __ pushl(raw_null); // Setup space on stack for return value. __ pushl(EDI); __ CallRuntime(kOptimizeInvokedFunctionRuntimeEntry, 1); __ popl(EAX); // Discard argument. __ popl(EAX); // Get Code object __ popl(EDX); // Restore argument descriptor. __ movl(EAX, FieldAddress(EAX, Code::instructions_offset())); __ addl(EAX, Immediate(Instructions::HeaderSize() - kHeapObjectTag)); __ LeaveFrame(); __ jmp(EAX); __ int3(); } DECLARE_LEAF_RUNTIME_ENTRY(intptr_t, BigintCompare, RawBigint* left, RawBigint* right); // Does identical check (object references are equal or not equal) with special // checks for boxed numbers. // Return ZF set. // Note: A Mint cannot contain a value that would fit in Smi, a Bigint // cannot contain a value that fits in Mint or Smi. void StubCode::GenerateIdenticalWithNumberCheckStub(Assembler* assembler, const Register left, const Register right, const Register temp, const Register unused) { Label reference_compare, done, check_mint, check_bigint; // If any of the arguments is Smi do reference compare. __ testl(left, Immediate(kSmiTagMask)); __ j(ZERO, &reference_compare, Assembler::kNearJump); __ testl(right, Immediate(kSmiTagMask)); __ j(ZERO, &reference_compare, Assembler::kNearJump); // Value compare for two doubles. __ CompareClassId(left, kDoubleCid, temp); __ j(NOT_EQUAL, &check_mint, Assembler::kNearJump); __ CompareClassId(right, kDoubleCid, temp); __ j(NOT_EQUAL, &done, Assembler::kNearJump); // Double values bitwise compare. __ movl(temp, FieldAddress(left, Double::value_offset() + 0 * kWordSize)); __ cmpl(temp, FieldAddress(right, Double::value_offset() + 0 * kWordSize)); __ j(NOT_EQUAL, &done, Assembler::kNearJump); __ movl(temp, FieldAddress(left, Double::value_offset() + 1 * kWordSize)); __ cmpl(temp, FieldAddress(right, Double::value_offset() + 1 * kWordSize)); __ jmp(&done, Assembler::kNearJump); __ Bind(&check_mint); __ CompareClassId(left, kMintCid, temp); __ j(NOT_EQUAL, &check_bigint, Assembler::kNearJump); __ CompareClassId(right, kMintCid, temp); __ j(NOT_EQUAL, &done, Assembler::kNearJump); __ movl(temp, FieldAddress(left, Mint::value_offset() + 0 * kWordSize)); __ cmpl(temp, FieldAddress(right, Mint::value_offset() + 0 * kWordSize)); __ j(NOT_EQUAL, &done, Assembler::kNearJump); __ movl(temp, FieldAddress(left, Mint::value_offset() + 1 * kWordSize)); __ cmpl(temp, FieldAddress(right, Mint::value_offset() + 1 * kWordSize)); __ jmp(&done, Assembler::kNearJump); __ Bind(&check_bigint); __ CompareClassId(left, kBigintCid, temp); __ j(NOT_EQUAL, &reference_compare, Assembler::kNearJump); __ CompareClassId(right, kBigintCid, temp); __ j(NOT_EQUAL, &done, Assembler::kNearJump); __ EnterFrame(0); __ ReserveAlignedFrameSpace(2 * kWordSize); __ movl(Address(ESP, 1 * kWordSize), left); __ movl(Address(ESP, 0 * kWordSize), right); __ CallRuntime(kBigintCompareRuntimeEntry, 2); // Result in EAX, 0 means equal. __ LeaveFrame(); __ cmpl(EAX, Immediate(0)); __ jmp(&done); __ Bind(&reference_compare); __ cmpl(left, right); __ Bind(&done); } // Called only from unoptimized code. All relevant registers have been saved. // TOS + 0: return address // TOS + 1: right argument. // TOS + 2: left argument. // Returns ZF set. void StubCode::GenerateUnoptimizedIdenticalWithNumberCheckStub( Assembler* assembler) { // Check single stepping. Label stepping, done_stepping; __ LoadIsolate(EAX); __ movzxb(EAX, Address(EAX, Isolate::single_step_offset())); __ cmpl(EAX, Immediate(0)); __ j(NOT_EQUAL, &stepping); __ Bind(&done_stepping); const Register left = EAX; const Register right = EDX; const Register temp = ECX; __ movl(left, Address(ESP, 2 * kWordSize)); __ movl(right, Address(ESP, 1 * kWordSize)); GenerateIdenticalWithNumberCheckStub(assembler, left, right, temp); __ ret(); __ Bind(&stepping); __ EnterStubFrame(); __ CallRuntime(kSingleStepHandlerRuntimeEntry, 0); __ LeaveFrame(); __ jmp(&done_stepping); } // Called from optimized code only. // TOS + 0: return address // TOS + 1: right argument. // TOS + 2: left argument. // Returns ZF set. void StubCode::GenerateOptimizedIdenticalWithNumberCheckStub( Assembler* assembler) { const Register left = EAX; const Register right = EDX; const Register temp = ECX; __ movl(left, Address(ESP, 2 * kWordSize)); __ movl(right, Address(ESP, 1 * kWordSize)); GenerateIdenticalWithNumberCheckStub(assembler, left, right, temp); __ ret(); } } // namespace dart #endif // defined TARGET_ARCH_IA32