df5cae97dc
This reverts commit61f45d66b2. This reverts commita0ab33ac52. This reverts commit68e2512ace. This reverts commitfb732a570d. TEST=ci Bug: b/501539846 Cq-Include-Trybots: luci.dart.try:vm-fuchsia-release-x64-try,vm-fuchsia-release-arm64-try,vm-ffi-mac-debug-simarm64_arm64-try,vm-ffi-mac-release-simarm64_arm64-try Change-Id: I7f27bb15bf1fcb26fe8793a043b7530ed99a02a7 Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/495480 Reviewed-by: Alexander Markov <alexmarkov@google.com> Commit-Queue: Ryan Macnak <rmacnak@google.com>
1227 lines
46 KiB
C++
1227 lines
46 KiB
C++
// Copyright (c) 2014, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#include "vm/globals.h" // Needed here to get TARGET_ARCH_ARM64.
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#if defined(TARGET_ARCH_ARM64)
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#include "vm/compiler/backend/flow_graph_compiler.h"
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#include "vm/compiler/api/type_check_mode.h"
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#include "vm/compiler/backend/il_printer.h"
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#include "vm/compiler/backend/locations.h"
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#include "vm/compiler/backend/parallel_move_resolver.h"
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#include "vm/compiler/jit/compiler.h"
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#include "vm/cpu.h"
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#include "vm/dart_entry.h"
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#include "vm/deopt_instructions.h"
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#include "vm/dispatch_table.h"
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#include "vm/instructions.h"
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#include "vm/object_store.h"
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#include "vm/parser.h"
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#include "vm/stack_frame.h"
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#include "vm/stub_code.h"
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#include "vm/symbols.h"
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namespace dart {
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DEFINE_FLAG(bool, trap_on_deoptimization, false, "Trap on deoptimization.");
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DECLARE_FLAG(bool, enable_simd_inline);
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void FlowGraphCompiler::ArchSpecificInitialization() {
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if (FLAG_precompiled_mode) {
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auto object_store = isolate_group()->object_store();
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const auto& stub =
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Code::ZoneHandle(object_store->write_barrier_wrappers_stub());
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if (CanPcRelativeCall(stub)) {
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assembler_->generate_invoke_write_barrier_wrapper_ = [&](Register reg) {
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const intptr_t offset_into_target =
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Thread::WriteBarrierWrappersOffsetForRegister(reg);
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assembler_->GenerateUnRelocatedPcRelativeCall(offset_into_target);
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AddPcRelativeCallStubTarget(stub);
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};
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}
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const auto& array_stub =
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Code::ZoneHandle(object_store->array_write_barrier_stub());
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if (CanPcRelativeCall(stub)) {
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assembler_->generate_invoke_array_write_barrier_ = [&]() {
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assembler_->GenerateUnRelocatedPcRelativeCall();
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AddPcRelativeCallStubTarget(array_stub);
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};
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}
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}
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}
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FlowGraphCompiler::~FlowGraphCompiler() {
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// BlockInfos are zone-allocated, so their destructors are not called.
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// Verify the labels explicitly here.
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for (int i = 0; i < block_info_.length(); ++i) {
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ASSERT(!block_info_[i]->jump_label()->IsLinked());
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}
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}
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bool FlowGraphCompiler::SupportsUnboxedSimd128() {
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return FLAG_enable_simd_inline;
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}
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bool FlowGraphCompiler::CanConvertInt64ToDouble() {
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return true;
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}
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void FlowGraphCompiler::EnterIntrinsicMode() {
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ASSERT(!intrinsic_mode());
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intrinsic_mode_ = true;
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ASSERT(!assembler()->constant_pool_allowed());
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}
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void FlowGraphCompiler::ExitIntrinsicMode() {
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ASSERT(intrinsic_mode());
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intrinsic_mode_ = false;
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}
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TypedDataPtr CompilerDeoptInfo::CreateDeoptInfo(FlowGraphCompiler* compiler,
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DeoptInfoBuilder* builder,
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const Array& deopt_table) {
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if (deopt_env_ == nullptr) {
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++builder->current_info_number_;
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return TypedData::null();
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}
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AllocateOutgoingArguments(deopt_env_);
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intptr_t slot_ix = 0;
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Environment* current = deopt_env_;
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// Emit all kMaterializeObject instructions describing objects to be
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// materialized on the deoptimization as a prefix to the deoptimization info.
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EmitMaterializations(deopt_env_, builder);
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// The real frame starts here.
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builder->MarkFrameStart();
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Zone* zone = compiler->zone();
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builder->AddPp(current->function(), slot_ix++);
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builder->AddPcMarker(Function::ZoneHandle(zone), slot_ix++);
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builder->AddCallerFp(slot_ix++);
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builder->AddReturnAddress(current->function(), deopt_id(), slot_ix++);
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// Emit all values that are needed for materialization as a part of the
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// expression stack for the bottom-most frame. This guarantees that GC
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// will be able to find them during materialization.
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slot_ix = builder->EmitMaterializationArguments(slot_ix);
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// For the innermost environment, set outgoing arguments and the locals.
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for (intptr_t i = current->Length() - 1;
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i >= current->fixed_parameter_count(); i--) {
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builder->AddCopy(current->ValueAt(i), current->LocationAt(i), slot_ix++);
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}
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Environment* previous = current;
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current = current->outer();
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while (current != nullptr) {
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builder->AddPp(current->function(), slot_ix++);
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builder->AddPcMarker(previous->function(), slot_ix++);
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builder->AddCallerFp(slot_ix++);
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// For any outer environment the deopt id is that of the call instruction
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// which is recorded in the outer environment.
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builder->AddReturnAddress(current->function(),
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DeoptId::ToDeoptAfter(current->GetDeoptId()),
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slot_ix++);
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// The values of outgoing arguments can be changed from the inlined call so
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// we must read them from the previous environment.
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for (intptr_t i = previous->fixed_parameter_count() - 1; i >= 0; i--) {
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builder->AddCopy(previous->ValueAt(i), previous->LocationAt(i),
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slot_ix++);
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}
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// Set the locals, note that outgoing arguments are not in the environment.
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for (intptr_t i = current->Length() - 1;
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i >= current->fixed_parameter_count(); i--) {
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builder->AddCopy(current->ValueAt(i), current->LocationAt(i), slot_ix++);
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}
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// Iterate on the outer environment.
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previous = current;
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current = current->outer();
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}
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// The previous pointer is now the outermost environment.
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ASSERT(previous != nullptr);
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// Add slots for the outermost environment.
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builder->AddCallerPp(slot_ix++);
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builder->AddPcMarker(previous->function(), slot_ix++);
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builder->AddCallerFp(slot_ix++);
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builder->AddCallerPc(slot_ix++);
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// For the outermost environment, set the incoming arguments.
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for (intptr_t i = previous->fixed_parameter_count() - 1; i >= 0; i--) {
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builder->AddCopy(previous->ValueAt(i), previous->LocationAt(i), slot_ix++);
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}
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return builder->CreateDeoptInfo(deopt_table);
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}
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void CompilerDeoptInfoWithStub::GenerateCode(FlowGraphCompiler* compiler,
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intptr_t stub_ix) {
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// Calls do not need stubs, they share a deoptimization trampoline.
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ASSERT(reason() != ICData::kDeoptAtCall);
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compiler::Assembler* assembler = compiler->assembler();
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#define __ assembler->
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__ Comment("%s", Name());
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__ Bind(entry_label());
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if (FLAG_trap_on_deoptimization) {
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__ brk(0);
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}
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ASSERT(deopt_env() != nullptr);
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__ Call(compiler::Address(THR, Thread::deoptimize_entry_offset()));
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set_pc_offset(assembler->CodeSize());
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#undef __
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}
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#define __ assembler->
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// Static methods of FlowGraphCompiler that take an assembler.
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void FlowGraphCompiler::GenerateIndirectTTSCall(compiler::Assembler* assembler,
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Register reg_to_call,
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intptr_t sub_type_cache_index) {
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__ LoadField(
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TTSInternalRegs::kScratchReg,
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compiler::FieldAddress(
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reg_to_call,
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compiler::target::AbstractType::type_test_stub_entry_point_offset()));
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__ LoadWordFromPoolIndex(TypeTestABI::kSubtypeTestCacheReg,
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sub_type_cache_index);
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__ blr(TTSInternalRegs::kScratchReg);
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}
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#undef __
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#define __ assembler()->
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// Instance methods of FlowGraphCompiler.
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// Fall through if bool_register contains null.
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void FlowGraphCompiler::GenerateBoolToJump(Register bool_register,
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compiler::Label* is_true,
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compiler::Label* is_false) {
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compiler::Label fall_through;
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__ CompareObject(bool_register, Object::null_object());
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__ b(&fall_through, EQ);
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BranchLabels labels = {is_true, is_false, &fall_through};
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Condition true_condition =
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EmitBoolTest(bool_register, labels, /*invert=*/false);
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ASSERT(true_condition == kInvalidCondition);
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__ Bind(&fall_through);
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}
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void FlowGraphCompiler::EmitFrameEntry() {
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const Function& function = parsed_function().function();
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if (CanOptimizeFunction() && function.IsOptimizable() &&
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(!is_optimizing() || may_reoptimize())) {
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__ Comment("Invocation Count Check");
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const Register function_reg = R6;
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__ ldr(function_reg,
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compiler::FieldAddress(CODE_REG, Code::owner_offset()));
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__ LoadFieldFromOffset(R7, function_reg, Function::usage_counter_offset(),
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compiler::kFourBytes);
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// Reoptimization of an optimized function is triggered by counting in
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// IC stubs, but not at the entry of the function.
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if (!is_optimizing()) {
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__ add(R7, R7, compiler::Operand(1));
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__ StoreFieldToOffset(R7, function_reg, Function::usage_counter_offset(),
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compiler::kFourBytes);
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}
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__ CompareImmediate(R7, GetOptimizationThreshold());
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ASSERT(function_reg == R6);
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compiler::Label dont_optimize;
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__ b(&dont_optimize, LT);
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__ ldr(TMP, compiler::Address(THR, Thread::optimize_entry_offset()));
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__ br(TMP);
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__ Bind(&dont_optimize);
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}
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if (flow_graph().graph_entry()->NeedsFrame()) {
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__ Comment("Enter frame");
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if (flow_graph().IsCompiledForOsr()) {
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const intptr_t extra_slots = ExtraStackSlotsOnOsrEntry();
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ASSERT(extra_slots >= 0);
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__ EnterOsrFrame(extra_slots * kWordSize);
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} else {
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ASSERT(StackSize() >= 0);
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__ EnterDartFrame(StackSize() * kWordSize);
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}
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} else if (FLAG_precompiled_mode) {
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assembler()->set_constant_pool_allowed(true);
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}
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if (FLAG_target_thread_sanitizer && !is_optimizing()) {
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bool uses_args_desc = parsed_function().has_arg_desc_var();
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if (uses_args_desc) {
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__ MoveRegister(CALLEE_SAVED_TEMP, ARGS_DESC_REG);
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}
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__ TsanFuncEntry(/*preserve_registers=*/false);
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if (uses_args_desc) {
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__ MoveRegister(ARGS_DESC_REG, CALLEE_SAVED_TEMP);
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}
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}
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}
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const InstructionSource& PrologueSource() {
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static InstructionSource prologue_source(TokenPosition::kDartCodePrologue,
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/*inlining_id=*/0);
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return prologue_source;
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}
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void FlowGraphCompiler::EmitPrologue() {
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BeginCodeSourceRange(PrologueSource());
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EmitFrameEntry();
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ASSERT(assembler()->constant_pool_allowed());
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// In unoptimized code, initialize (non-argument) stack allocated slots.
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if (!is_optimizing()) {
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const int num_locals = parsed_function().num_stack_locals();
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intptr_t args_desc_slot = -1;
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if (parsed_function().has_arg_desc_var()) {
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args_desc_slot = compiler::target::frame_layout.FrameSlotForVariable(
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parsed_function().arg_desc_var());
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}
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__ Comment("Initialize spill slots");
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for (intptr_t i = 0; i < num_locals; ++i) {
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const intptr_t slot_index =
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compiler::target::frame_layout.FrameSlotForVariableIndex(-i);
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Register value_reg =
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slot_index == args_desc_slot ? ARGS_DESC_REG : NULL_REG;
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__ StoreToOffset(value_reg, FP, slot_index * kWordSize);
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}
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} else if (parsed_function().suspend_state_var() != nullptr &&
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!flow_graph().IsCompiledForOsr()) {
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// Initialize synthetic :suspend_state variable early
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// as it may be accessed by GC and exception handling before
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// InitSuspendableFunction stub is called.
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const intptr_t slot_index =
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compiler::target::frame_layout.FrameSlotForVariable(
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parsed_function().suspend_state_var());
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__ StoreToOffset(NULL_REG, FP, slot_index * kWordSize);
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}
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EndCodeSourceRange(PrologueSource());
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}
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void FlowGraphCompiler::EmitCallToStub(
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const Code& stub,
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ObjectPool::SnapshotBehavior snapshot_behavior) {
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ASSERT(!stub.IsNull());
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if (CanPcRelativeCall(stub)) {
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__ GenerateUnRelocatedPcRelativeCall();
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AddPcRelativeCallStubTarget(stub);
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} else {
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__ BranchLink(stub, compiler::ObjectPoolBuilderEntry::kNotPatchable,
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CodeEntryKind::kNormal, snapshot_behavior);
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AddStubCallTarget(stub);
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}
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}
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void FlowGraphCompiler::EmitJumpToStub(const Code& stub) {
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ASSERT(!stub.IsNull());
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if (CanPcRelativeCall(stub)) {
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__ GenerateUnRelocatedPcRelativeTailCall();
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AddPcRelativeTailCallStubTarget(stub);
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} else {
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__ LoadObject(CODE_REG, stub);
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__ ldr(TMP, compiler::FieldAddress(
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CODE_REG, compiler::target::Code::entry_point_offset()));
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__ br(TMP);
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AddStubCallTarget(stub);
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}
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}
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void FlowGraphCompiler::EmitTailCallToStub(const Code& stub) {
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ASSERT(!stub.IsNull());
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if (CanPcRelativeCall(stub)) {
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if (flow_graph().graph_entry()->NeedsFrame()) {
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if (FLAG_target_thread_sanitizer && !is_optimizing()) {
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__ TsanFuncExit();
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}
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__ LeaveDartFrame();
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}
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__ GenerateUnRelocatedPcRelativeTailCall();
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AddPcRelativeTailCallStubTarget(stub);
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#if defined(DEBUG)
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__ Breakpoint();
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#endif
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} else {
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__ LoadObject(CODE_REG, stub);
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if (flow_graph().graph_entry()->NeedsFrame()) {
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if (FLAG_target_thread_sanitizer && !is_optimizing()) {
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__ TsanFuncExit();
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}
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__ LeaveDartFrame();
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}
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__ ldr(TMP, compiler::FieldAddress(
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CODE_REG, compiler::target::Code::entry_point_offset()));
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__ br(TMP);
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AddStubCallTarget(stub);
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}
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}
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void FlowGraphCompiler::GeneratePatchableCall(
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const InstructionSource& source,
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const Code& stub,
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UntaggedPcDescriptors::Kind kind,
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LocationSummary* locs,
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ObjectPool::SnapshotBehavior snapshot_behavior) {
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__ BranchLinkPatchable(stub, CodeEntryKind::kNormal, snapshot_behavior);
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EmitCallsiteMetadata(source, DeoptId::kNone, kind, locs,
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pending_deoptimization_env_);
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}
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void FlowGraphCompiler::GenerateDartCall(intptr_t deopt_id,
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const InstructionSource& source,
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const Code& stub,
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UntaggedPcDescriptors::Kind kind,
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LocationSummary* locs,
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Code::EntryKind entry_kind) {
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ASSERT(CanCallDart());
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__ BranchLinkPatchable(stub, entry_kind);
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EmitCallsiteMetadata(source, deopt_id, kind, locs,
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pending_deoptimization_env_);
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}
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void FlowGraphCompiler::GenerateStaticDartCall(intptr_t deopt_id,
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const InstructionSource& source,
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UntaggedPcDescriptors::Kind kind,
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LocationSummary* locs,
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const Function& target,
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Code::EntryKind entry_kind) {
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ASSERT(CanCallDart());
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if (CanPcRelativeCall(target)) {
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__ GenerateUnRelocatedPcRelativeCall();
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AddPcRelativeCallTarget(target, entry_kind);
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EmitCallsiteMetadata(source, deopt_id, kind, locs,
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pending_deoptimization_env_);
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} else {
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// Call sites to the same target can share object pool entries. These
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// call sites are never patched for breakpoints: the function is deoptimized
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// and the unoptimized code with IC calls for static calls is patched
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// instead.
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ASSERT(is_optimizing());
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const auto& stub = StubCode::CallStaticFunction();
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__ BranchLinkWithEquivalence(stub, target, entry_kind);
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EmitCallsiteMetadata(source, deopt_id, kind, locs,
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pending_deoptimization_env_);
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AddStaticCallTarget(target, entry_kind);
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}
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}
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void FlowGraphCompiler::EmitEdgeCounter(intptr_t edge_id) {
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// We do not check for overflow when incrementing the edge counter. The
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// function should normally be optimized long before the counter can
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// overflow; and though we do not reset the counters when we optimize or
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// deoptimize, there is a bound on the number of
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// optimization/deoptimization cycles we will attempt.
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ASSERT(!edge_counters_array_.IsNull());
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ASSERT(assembler_->constant_pool_allowed());
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__ Comment("Edge counter");
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__ LoadObject(R0, edge_counters_array_);
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__ LoadCompressedSmiFieldFromOffset(TMP, R0, Array::element_offset(edge_id));
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__ add(TMP, TMP, compiler::Operand(Smi::RawValue(1)), compiler::kObjectBytes);
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__ StoreFieldToOffset(TMP, R0, Array::element_offset(edge_id),
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compiler::kObjectBytes);
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}
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void FlowGraphCompiler::EmitOptimizedInstanceCall(
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const Code& stub,
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const ICData& ic_data,
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intptr_t deopt_id,
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const InstructionSource& source,
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LocationSummary* locs,
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Code::EntryKind entry_kind) {
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ASSERT(CanCallDart());
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ASSERT(Array::Handle(zone(), ic_data.arguments_descriptor()).Length() > 0);
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// Each ICData propagated from unoptimized to optimized code contains the
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// function that corresponds to the Dart function of that IC call. Due
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// to inlining in optimized code, that function may not correspond to the
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// top-level function (parsed_function().function()) which could be
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// reoptimized and which counter needs to be incremented.
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// Pass the function explicitly, it is used in IC stub.
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__ LoadObject(R6, parsed_function().function());
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__ LoadFromOffset(R0, SP, (ic_data.SizeWithoutTypeArgs() - 1) * kWordSize);
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__ LoadUniqueObject(IC_DATA_REG, ic_data);
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GenerateDartCall(deopt_id, source, stub, UntaggedPcDescriptors::kIcCall, locs,
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entry_kind);
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EmitDropArguments(ic_data.SizeWithTypeArgs());
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitInstanceCallJIT(const Code& stub,
|
|
const ICData& ic_data,
|
|
intptr_t deopt_id,
|
|
const InstructionSource& source,
|
|
LocationSummary* locs,
|
|
Code::EntryKind entry_kind) {
|
|
ASSERT(CanCallDart());
|
|
ASSERT(entry_kind == Code::EntryKind::kNormal ||
|
|
entry_kind == Code::EntryKind::kUnchecked);
|
|
ASSERT(Array::Handle(zone(), ic_data.arguments_descriptor()).Length() > 0);
|
|
__ LoadFromOffset(R0, SP, (ic_data.SizeWithoutTypeArgs() - 1) * kWordSize);
|
|
|
|
compiler::ObjectPoolBuilder& op = __ object_pool_builder();
|
|
const intptr_t stub_index =
|
|
op.AddObject(stub, ObjectPool::Patchability::kPatchable);
|
|
const intptr_t ic_data_index =
|
|
op.AddObject(ic_data, ObjectPool::Patchability::kPatchable);
|
|
ASSERT((stub_index + 1) == ic_data_index);
|
|
__ LoadDoubleWordFromPoolIndex(CODE_REG, IC_DATA_REG, stub_index);
|
|
const intptr_t entry_point_offset =
|
|
entry_kind == Code::EntryKind::kNormal
|
|
? Code::entry_point_offset(Code::EntryKind::kMonomorphic)
|
|
: Code::entry_point_offset(Code::EntryKind::kMonomorphicUnchecked);
|
|
__ Call(compiler::FieldAddress(CODE_REG, entry_point_offset));
|
|
EmitCallsiteMetadata(source, deopt_id, UntaggedPcDescriptors::kIcCall, locs,
|
|
pending_deoptimization_env_);
|
|
EmitDropArguments(ic_data.SizeWithTypeArgs());
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitMegamorphicInstanceCall(
|
|
const String& name,
|
|
const Array& arguments_descriptor,
|
|
intptr_t deopt_id,
|
|
const InstructionSource& source,
|
|
LocationSummary* locs) {
|
|
ASSERT(CanCallDart());
|
|
ASSERT(!arguments_descriptor.IsNull() && (arguments_descriptor.Length() > 0));
|
|
ASSERT(!FLAG_precompiled_mode);
|
|
const ArgumentsDescriptor args_desc(arguments_descriptor);
|
|
const MegamorphicCache& cache = MegamorphicCache::ZoneHandle(
|
|
zone(),
|
|
MegamorphicCacheTable::Lookup(thread(), name, arguments_descriptor));
|
|
|
|
__ Comment("MegamorphicCall");
|
|
// Load receiver into R0.
|
|
__ LoadFromOffset(R0, SP, (args_desc.Count() - 1) * kWordSize);
|
|
|
|
// Use same code pattern as instance call so it can be parsed by code patcher.
|
|
compiler::ObjectPoolBuilder& op = __ object_pool_builder();
|
|
const intptr_t stub_index = op.AddObject(
|
|
StubCode::MegamorphicCall(), ObjectPool::Patchability::kPatchable);
|
|
const intptr_t data_index =
|
|
op.AddObject(cache, ObjectPool::Patchability::kPatchable);
|
|
ASSERT((stub_index + 1) == data_index);
|
|
__ LoadDoubleWordFromPoolIndex(CODE_REG, IC_DATA_REG, stub_index);
|
|
CLOBBERS_LR(__ ldr(LR, compiler::FieldAddress(
|
|
CODE_REG, Code::entry_point_offset(
|
|
Code::EntryKind::kMonomorphic))));
|
|
CLOBBERS_LR(__ blr(LR));
|
|
|
|
RecordSafepoint(locs);
|
|
AddCurrentDescriptor(UntaggedPcDescriptors::kOther, DeoptId::kNone, source);
|
|
const intptr_t deopt_id_after = DeoptId::ToDeoptAfter(deopt_id);
|
|
if (is_optimizing()) {
|
|
AddDeoptIndexAtCall(deopt_id_after, pending_deoptimization_env_);
|
|
} else {
|
|
// Add deoptimization continuation point after the call and before the
|
|
// arguments are removed.
|
|
AddCurrentDescriptor(UntaggedPcDescriptors::kDeopt, deopt_id_after, source);
|
|
}
|
|
RecordCatchEntryMoves(pending_deoptimization_env_);
|
|
EmitDropArguments(args_desc.SizeWithTypeArgs());
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitInstanceCallAOT(const ICData& ic_data,
|
|
intptr_t deopt_id,
|
|
const InstructionSource& source,
|
|
LocationSummary* locs,
|
|
Code::EntryKind entry_kind,
|
|
bool receiver_can_be_smi) {
|
|
ASSERT(CanCallDart());
|
|
ASSERT(ic_data.NumArgsTested() == 1);
|
|
const Code& initial_stub = StubCode::SwitchableCallMiss();
|
|
const char* switchable_call_mode = "smiable";
|
|
if (!receiver_can_be_smi) {
|
|
switchable_call_mode = "non-smi";
|
|
ic_data.set_receiver_cannot_be_smi(true);
|
|
}
|
|
const UnlinkedCall& data =
|
|
UnlinkedCall::ZoneHandle(zone(), ic_data.AsUnlinkedCall());
|
|
|
|
compiler::ObjectPoolBuilder& op = __ object_pool_builder();
|
|
|
|
__ Comment("InstanceCallAOT (%s)", switchable_call_mode);
|
|
// Clear argument descriptor to keep gc happy when it gets pushed on to
|
|
// the stack.
|
|
__ LoadImmediate(R4, 0);
|
|
__ LoadFromOffset(R0, SP, (ic_data.SizeWithoutTypeArgs() - 1) * kWordSize);
|
|
|
|
const auto snapshot_behavior =
|
|
FLAG_precompiled_mode ? compiler::ObjectPoolBuilderEntry::
|
|
kResetToSwitchableCallMissEntryPoint
|
|
: compiler::ObjectPoolBuilderEntry::kSnapshotable;
|
|
const intptr_t stub_index = op.AddObject(
|
|
initial_stub, ObjectPool::Patchability::kPatchable, snapshot_behavior);
|
|
const intptr_t data_index =
|
|
op.AddObject(data, ObjectPool::Patchability::kPatchable);
|
|
ASSERT((stub_index + 1) == data_index);
|
|
|
|
// The AOT runtime will replace the slot in the object pool with the
|
|
// entrypoint address - see app_snapshot.cc.
|
|
CLOBBERS_LR(__ LoadDoubleWordFromPoolIndex(LR, R5, stub_index));
|
|
CLOBBERS_LR(__ blr(LR));
|
|
|
|
EmitCallsiteMetadata(source, DeoptId::kNone, UntaggedPcDescriptors::kOther,
|
|
locs, pending_deoptimization_env_);
|
|
EmitDropArguments(ic_data.SizeWithTypeArgs());
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitUnoptimizedStaticCall(
|
|
intptr_t size_with_type_args,
|
|
intptr_t deopt_id,
|
|
const InstructionSource& source,
|
|
LocationSummary* locs,
|
|
const ICData& ic_data,
|
|
Code::EntryKind entry_kind) {
|
|
ASSERT(CanCallDart());
|
|
const Code& stub =
|
|
StubCode::UnoptimizedStaticCallEntry(ic_data.NumArgsTested());
|
|
__ LoadObject(R5, ic_data);
|
|
GenerateDartCall(deopt_id, source, stub,
|
|
UntaggedPcDescriptors::kUnoptStaticCall, locs, entry_kind);
|
|
EmitDropArguments(size_with_type_args);
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitOptimizedStaticCall(
|
|
const Function& function,
|
|
const Array& arguments_descriptor,
|
|
intptr_t size_with_type_args,
|
|
intptr_t deopt_id,
|
|
const InstructionSource& source,
|
|
LocationSummary* locs,
|
|
Code::EntryKind entry_kind) {
|
|
ASSERT(CanCallDart());
|
|
ASSERT(!function.IsClosureFunction());
|
|
if (function.PrologueNeedsArgumentsDescriptor()) {
|
|
__ LoadObject(ARGS_DESC_REG, arguments_descriptor);
|
|
} else {
|
|
if (!FLAG_precompiled_mode) {
|
|
__ LoadImmediate(ARGS_DESC_REG, 0); // GC safe smi zero because of stub.
|
|
}
|
|
}
|
|
// Do not use the code from the function, but let the code be patched so that
|
|
// we can record the outgoing edges to other code.
|
|
GenerateStaticDartCall(deopt_id, source, UntaggedPcDescriptors::kOther, locs,
|
|
function, entry_kind);
|
|
EmitDropArguments(size_with_type_args);
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitDispatchTableCall(
|
|
int32_t selector_offset,
|
|
const Array& arguments_descriptor) {
|
|
const auto cid_reg = DispatchTableNullErrorABI::kClassIdReg;
|
|
ASSERT(CanCallDart());
|
|
ASSERT(cid_reg != ARGS_DESC_REG);
|
|
if (!arguments_descriptor.IsNull()) {
|
|
__ LoadObject(ARGS_DESC_REG, arguments_descriptor);
|
|
}
|
|
const intptr_t offset = selector_offset - DispatchTable::kOriginElement;
|
|
CLOBBERS_LR({
|
|
// Would like cid_reg to be available on entry to the target function
|
|
// for checking purposes.
|
|
ASSERT(cid_reg != LR);
|
|
__ AddImmediate(LR, cid_reg, offset);
|
|
__ Call(compiler::Address(DISPATCH_TABLE_REG, LR, UXTX,
|
|
compiler::Address::Scaled));
|
|
});
|
|
}
|
|
|
|
Condition FlowGraphCompiler::EmitEqualityRegConstCompare(
|
|
Register reg,
|
|
const Object& obj,
|
|
bool needs_number_check,
|
|
const InstructionSource& source,
|
|
intptr_t deopt_id) {
|
|
if (needs_number_check) {
|
|
ASSERT(!obj.IsMint() && !obj.IsDouble());
|
|
__ LoadObject(TMP, obj);
|
|
__ PushPair(TMP, reg);
|
|
if (is_optimizing()) {
|
|
// No breakpoints in optimized code.
|
|
__ BranchLink(StubCode::OptimizedIdenticalWithNumberCheck());
|
|
AddCurrentDescriptor(UntaggedPcDescriptors::kOther, deopt_id, source);
|
|
} else {
|
|
// Patchable to support breakpoints.
|
|
__ BranchLinkPatchable(StubCode::UnoptimizedIdenticalWithNumberCheck());
|
|
AddCurrentDescriptor(UntaggedPcDescriptors::kRuntimeCall, deopt_id,
|
|
source);
|
|
}
|
|
// Stub returns result in flags (result of a cmp, we need Z computed).
|
|
// Discard constant.
|
|
// Restore 'reg'.
|
|
__ PopPair(ZR, reg);
|
|
} else {
|
|
__ CompareObject(reg, obj);
|
|
}
|
|
return EQ;
|
|
}
|
|
|
|
Condition FlowGraphCompiler::EmitEqualityRegRegCompare(
|
|
Register left,
|
|
Register right,
|
|
bool needs_number_check,
|
|
const InstructionSource& source,
|
|
intptr_t deopt_id) {
|
|
if (needs_number_check) {
|
|
__ PushPair(right, left);
|
|
if (is_optimizing()) {
|
|
__ BranchLink(StubCode::OptimizedIdenticalWithNumberCheck());
|
|
} else {
|
|
__ BranchLinkPatchable(StubCode::UnoptimizedIdenticalWithNumberCheck());
|
|
}
|
|
AddCurrentDescriptor(UntaggedPcDescriptors::kRuntimeCall, deopt_id, source);
|
|
// Stub returns result in flags (result of a cmp, we need Z computed).
|
|
__ PopPair(right, left);
|
|
} else {
|
|
__ CompareObjectRegisters(left, right);
|
|
}
|
|
return EQ;
|
|
}
|
|
|
|
Condition FlowGraphCompiler::EmitBoolTest(Register value,
|
|
BranchLabels labels,
|
|
bool invert) {
|
|
__ Comment("BoolTest");
|
|
if (labels.true_label == nullptr || labels.false_label == nullptr) {
|
|
__ tsti(value, compiler::Immediate(
|
|
compiler::target::ObjectAlignment::kBoolValueMask));
|
|
return invert ? NE : EQ;
|
|
}
|
|
const intptr_t bool_bit =
|
|
compiler::target::ObjectAlignment::kBoolValueBitPosition;
|
|
if (labels.fall_through == labels.false_label) {
|
|
if (invert) {
|
|
__ tbnz(labels.true_label, value, bool_bit);
|
|
} else {
|
|
__ tbz(labels.true_label, value, bool_bit);
|
|
}
|
|
} else {
|
|
if (invert) {
|
|
__ tbz(labels.false_label, value, bool_bit);
|
|
} else {
|
|
__ tbnz(labels.false_label, value, bool_bit);
|
|
}
|
|
if (labels.fall_through != labels.true_label) {
|
|
__ b(labels.true_label);
|
|
}
|
|
}
|
|
return kInvalidCondition;
|
|
}
|
|
|
|
// This function must be in sync with FlowGraphCompiler::RecordSafepoint and
|
|
// FlowGraphCompiler::SlowPathEnvironmentFor.
|
|
void FlowGraphCompiler::SaveLiveRegisters(LocationSummary* locs) {
|
|
#if defined(DEBUG)
|
|
locs->CheckWritableInputs();
|
|
ClobberDeadTempRegisters(locs);
|
|
#endif
|
|
// TODO(vegorov): consider saving only caller save (volatile) registers.
|
|
__ PushRegisters(*locs->live_registers());
|
|
}
|
|
|
|
void FlowGraphCompiler::RestoreLiveRegisters(LocationSummary* locs) {
|
|
__ PopRegisters(*locs->live_registers());
|
|
}
|
|
|
|
#if defined(DEBUG)
|
|
void FlowGraphCompiler::ClobberDeadTempRegisters(LocationSummary* locs) {
|
|
// Clobber temporaries that have not been manually preserved.
|
|
for (intptr_t i = 0; i < locs->temp_count(); ++i) {
|
|
Location tmp = locs->temp(i);
|
|
// TODO(zerny): clobber non-live temporary FPU registers.
|
|
if (tmp.IsRegister() &&
|
|
!locs->live_registers()->ContainsRegister(tmp.reg())) {
|
|
__ movz(tmp.reg(), compiler::Immediate(0xf7), 0);
|
|
}
|
|
}
|
|
}
|
|
#endif
|
|
|
|
Register FlowGraphCompiler::EmitTestCidRegister() {
|
|
return R2;
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitTestAndCallLoadReceiver(
|
|
intptr_t count_without_type_args,
|
|
const Array& arguments_descriptor) {
|
|
__ Comment("EmitTestAndCall");
|
|
// Load receiver into R0.
|
|
__ LoadFromOffset(R0, SP, (count_without_type_args - 1) * kWordSize);
|
|
__ LoadObject(ARGS_DESC_REG, arguments_descriptor);
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitTestAndCallSmiBranch(compiler::Label* label,
|
|
bool if_smi) {
|
|
if (if_smi) {
|
|
__ BranchIfSmi(R0, label);
|
|
} else {
|
|
__ BranchIfNotSmi(R0, label);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitTestAndCallLoadCid(Register class_id_reg) {
|
|
ASSERT(class_id_reg != R0);
|
|
__ LoadClassId(class_id_reg, R0);
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitMove(Location destination,
|
|
Location source,
|
|
TemporaryRegisterAllocator* allocator) {
|
|
if (destination.Equals(source)) return;
|
|
|
|
if (source.IsRegister()) {
|
|
if (destination.IsRegister()) {
|
|
__ mov(destination.reg(), source.reg());
|
|
} else {
|
|
ASSERT(destination.IsStackSlot());
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
__ StoreToOffset(source.reg(), destination.base_reg(), dest_offset);
|
|
}
|
|
} else if (source.IsStackSlot()) {
|
|
if (destination.IsRegister()) {
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
__ LoadFromOffset(destination.reg(), source.base_reg(), source_offset);
|
|
} else if (destination.IsFpuRegister()) {
|
|
const intptr_t src_offset = source.ToStackSlotOffset();
|
|
VRegister dst = destination.fpu_reg();
|
|
__ LoadDFromOffset(dst, source.base_reg(), src_offset);
|
|
} else {
|
|
ASSERT(destination.IsStackSlot());
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
Register tmp = allocator->AllocateTemporary();
|
|
__ LoadFromOffset(tmp, source.base_reg(), source_offset);
|
|
__ StoreToOffset(tmp, destination.base_reg(), dest_offset);
|
|
allocator->ReleaseTemporary();
|
|
}
|
|
} else if (source.IsFpuRegister()) {
|
|
if (destination.IsFpuRegister()) {
|
|
__ vmov(destination.fpu_reg(), source.fpu_reg());
|
|
} else {
|
|
if (destination.IsStackSlot() /*32-bit float*/ ||
|
|
destination.IsDoubleStackSlot()) {
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
VRegister src = source.fpu_reg();
|
|
__ StoreDToOffset(src, destination.base_reg(), dest_offset);
|
|
} else {
|
|
ASSERT(destination.IsQuadStackSlot());
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
__ StoreQToOffset(source.fpu_reg(), destination.base_reg(),
|
|
dest_offset);
|
|
}
|
|
}
|
|
} else if (source.IsDoubleStackSlot()) {
|
|
if (destination.IsFpuRegister()) {
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
const VRegister dst = destination.fpu_reg();
|
|
__ LoadDFromOffset(dst, source.base_reg(), source_offset);
|
|
} else {
|
|
ASSERT(destination.IsDoubleStackSlot() ||
|
|
destination.IsStackSlot() /*32-bit float*/);
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
__ LoadDFromOffset(VTMP, source.base_reg(), source_offset);
|
|
__ StoreDToOffset(VTMP, destination.base_reg(), dest_offset);
|
|
}
|
|
} else if (source.IsQuadStackSlot()) {
|
|
if (destination.IsFpuRegister()) {
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
__ LoadQFromOffset(destination.fpu_reg(), source.base_reg(),
|
|
source_offset);
|
|
} else {
|
|
ASSERT(destination.IsQuadStackSlot());
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
__ LoadQFromOffset(VTMP, source.base_reg(), source_offset);
|
|
__ StoreQToOffset(VTMP, destination.base_reg(), dest_offset);
|
|
}
|
|
} else {
|
|
ASSERT(source.IsConstant());
|
|
if (destination.IsStackSlot()) {
|
|
Register tmp = allocator->AllocateTemporary();
|
|
source.constant_instruction()->EmitMoveToLocation(this, destination, tmp);
|
|
allocator->ReleaseTemporary();
|
|
} else {
|
|
source.constant_instruction()->EmitMoveToLocation(this, destination);
|
|
}
|
|
}
|
|
}
|
|
|
|
static compiler::OperandSize BytesToOperandSize(intptr_t bytes) {
|
|
switch (bytes) {
|
|
case 8:
|
|
return compiler::OperandSize::kEightBytes;
|
|
case 4:
|
|
return compiler::OperandSize::kFourBytes;
|
|
case 2:
|
|
return compiler::OperandSize::kTwoBytes;
|
|
case 1:
|
|
return compiler::OperandSize::kByte;
|
|
default:
|
|
UNIMPLEMENTED();
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitNativeMoveArchitecture(
|
|
const compiler::ffi::NativeLocation& destination,
|
|
const compiler::ffi::NativeLocation& source) {
|
|
const auto& src_payload_type = source.payload_type();
|
|
const auto& dst_payload_type = destination.payload_type();
|
|
const auto& src_container_type = source.container_type();
|
|
const auto& dst_container_type = destination.container_type();
|
|
ASSERT(src_container_type.IsFloat() == dst_container_type.IsFloat());
|
|
ASSERT(src_container_type.IsInt() == dst_container_type.IsInt());
|
|
ASSERT(src_payload_type.IsSigned() == dst_payload_type.IsSigned());
|
|
ASSERT(src_payload_type.IsPrimitive());
|
|
ASSERT(dst_payload_type.IsPrimitive());
|
|
const intptr_t src_size = src_payload_type.SizeInBytes();
|
|
const intptr_t dst_size = dst_payload_type.SizeInBytes();
|
|
const bool sign_or_zero_extend = dst_size > src_size;
|
|
|
|
if (source.IsRegisters()) {
|
|
const auto& src = source.AsRegisters();
|
|
ASSERT(src.num_regs() == 1);
|
|
const auto src_reg = src.reg_at(0);
|
|
|
|
if (destination.IsRegisters()) {
|
|
const auto& dst = destination.AsRegisters();
|
|
ASSERT(dst.num_regs() == 1);
|
|
const auto dst_reg = dst.reg_at(0);
|
|
ASSERT(destination.container_type().SizeInBytes() <= 8);
|
|
if (!sign_or_zero_extend) {
|
|
__ MoveRegister(dst_reg, src_reg);
|
|
} else {
|
|
if (src_payload_type.IsSigned()) {
|
|
__ sbfx(dst_reg, src_reg, 0, src_size * kBitsPerByte);
|
|
} else {
|
|
__ ubfx(dst_reg, src_reg, 0, src_size * kBitsPerByte);
|
|
}
|
|
}
|
|
|
|
} else if (destination.IsFpuRegisters()) {
|
|
// Fpu Registers should only contain doubles and registers only ints.
|
|
UNIMPLEMENTED();
|
|
|
|
} else {
|
|
ASSERT(destination.IsStack());
|
|
const auto& dst = destination.AsStack();
|
|
ASSERT(!sign_or_zero_extend);
|
|
auto const op_size =
|
|
BytesToOperandSize(destination.container_type().SizeInBytes());
|
|
__ StoreToOffset(src.reg_at(0), dst.base_register(),
|
|
dst.offset_in_bytes(), op_size);
|
|
}
|
|
|
|
} else if (source.IsFpuRegisters()) {
|
|
const auto& src = source.AsFpuRegisters();
|
|
// We have not implemented conversions here, use IL convert instructions.
|
|
ASSERT(src_payload_type.Equals(dst_payload_type));
|
|
|
|
if (destination.IsRegisters()) {
|
|
// Fpu Registers should only contain doubles and registers only ints.
|
|
UNIMPLEMENTED();
|
|
|
|
} else if (destination.IsFpuRegisters()) {
|
|
const auto& dst = destination.AsFpuRegisters();
|
|
__ vmov(dst.fpu_reg(), src.fpu_reg());
|
|
|
|
} else {
|
|
ASSERT(destination.IsStack());
|
|
ASSERT(src_payload_type.IsFloat());
|
|
const auto& dst = destination.AsStack();
|
|
switch (dst_size) {
|
|
case 8:
|
|
__ StoreDToOffset(src.fpu_reg(), dst.base_register(),
|
|
dst.offset_in_bytes());
|
|
return;
|
|
case 4:
|
|
__ StoreSToOffset(src.fpu_reg(), dst.base_register(),
|
|
dst.offset_in_bytes());
|
|
return;
|
|
default:
|
|
UNREACHABLE();
|
|
}
|
|
}
|
|
|
|
} else {
|
|
ASSERT(source.IsStack());
|
|
const auto& src = source.AsStack();
|
|
if (destination.IsRegisters()) {
|
|
const auto& dst = destination.AsRegisters();
|
|
ASSERT(dst.num_regs() == 1);
|
|
const auto dst_reg = dst.reg_at(0);
|
|
EmitNativeLoad(dst_reg, src.base_register(), src.offset_in_bytes(),
|
|
src_payload_type.AsPrimitive().representation());
|
|
} else if (destination.IsFpuRegisters()) {
|
|
ASSERT(src_payload_type.Equals(dst_payload_type));
|
|
ASSERT(src_payload_type.IsFloat());
|
|
const auto& dst = destination.AsFpuRegisters();
|
|
switch (src_size) {
|
|
case 8:
|
|
__ LoadDFromOffset(dst.fpu_reg(), src.base_register(),
|
|
src.offset_in_bytes());
|
|
return;
|
|
case 4:
|
|
__ LoadSFromOffset(dst.fpu_reg(), src.base_register(),
|
|
src.offset_in_bytes());
|
|
return;
|
|
default:
|
|
UNIMPLEMENTED();
|
|
}
|
|
|
|
} else {
|
|
ASSERT(destination.IsStack());
|
|
UNREACHABLE();
|
|
}
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitNativeLoad(Register dst,
|
|
Register base,
|
|
intptr_t offset,
|
|
compiler::ffi::PrimitiveType type) {
|
|
switch (type) {
|
|
case compiler::ffi::kInt8:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kByte);
|
|
break;
|
|
case compiler::ffi::kUint8:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedByte);
|
|
break;
|
|
case compiler::ffi::kInt16:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kTwoBytes);
|
|
break;
|
|
case compiler::ffi::kUint16:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedTwoBytes);
|
|
break;
|
|
case compiler::ffi::kInt32:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kFourBytes);
|
|
break;
|
|
case compiler::ffi::kUint32:
|
|
case compiler::ffi::kFloat:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
break;
|
|
case compiler::ffi::kInt64:
|
|
case compiler::ffi::kUint64:
|
|
case compiler::ffi::kDouble:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kEightBytes);
|
|
break;
|
|
|
|
case compiler::ffi::kInt24:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedTwoBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 2, compiler::kByte);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 16));
|
|
break;
|
|
case compiler::ffi::kUint24:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedTwoBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 2, compiler::kUnsignedByte);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 16));
|
|
break;
|
|
case compiler::ffi::kInt40:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 4, compiler::kByte);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 32));
|
|
break;
|
|
case compiler::ffi::kUint40:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 4, compiler::kUnsignedByte);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 32));
|
|
break;
|
|
case compiler::ffi::kInt48:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 4, compiler::kTwoBytes);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 32));
|
|
break;
|
|
case compiler::ffi::kUint48:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 4, compiler::kUnsignedTwoBytes);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 32));
|
|
break;
|
|
case compiler::ffi::kInt56:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 4, compiler::kUnsignedTwoBytes);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 32));
|
|
__ LoadFromOffset(TMP, base, offset + 6, compiler::kByte);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 48));
|
|
break;
|
|
case compiler::ffi::kUint56:
|
|
__ LoadFromOffset(dst, base, offset, compiler::kUnsignedFourBytes);
|
|
__ LoadFromOffset(TMP, base, offset + 4, compiler::kUnsignedTwoBytes);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 32));
|
|
__ LoadFromOffset(TMP, base, offset + 6, compiler::kUnsignedByte);
|
|
__ orr(dst, dst, compiler::Operand(TMP, LSL, 48));
|
|
break;
|
|
default:
|
|
UNREACHABLE();
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::LoadBSSEntry(BSS::Relocation relocation,
|
|
Register dst,
|
|
Register tmp) {
|
|
compiler::Label skip_reloc;
|
|
__ b(&skip_reloc);
|
|
InsertBSSRelocation(relocation);
|
|
__ Bind(&skip_reloc);
|
|
|
|
__ adr(tmp, compiler::Immediate(-compiler::target::kWordSize));
|
|
|
|
// tmp holds the address of the relocation.
|
|
__ ldr(dst, compiler::Address(tmp));
|
|
|
|
// dst holds the relocation itself: tmp - bss_start.
|
|
// tmp = tmp + (bss_start - tmp) = bss_start
|
|
__ add(tmp, tmp, compiler::Operand(dst));
|
|
|
|
// tmp holds the start of the BSS section.
|
|
// Load the "get-thread" routine: *bss_start.
|
|
__ ldr(dst, compiler::Address(tmp));
|
|
}
|
|
|
|
#undef __
|
|
#define __ compiler_->assembler()->
|
|
|
|
void ParallelMoveEmitter::EmitSwap(const MoveOperands& move) {
|
|
const Location source = move.src();
|
|
const Location destination = move.dest();
|
|
|
|
if (source.IsRegister() && destination.IsRegister()) {
|
|
ASSERT(source.reg() != TMP);
|
|
ASSERT(destination.reg() != TMP);
|
|
__ mov(TMP, source.reg());
|
|
__ mov(source.reg(), destination.reg());
|
|
__ mov(destination.reg(), TMP);
|
|
} else if (source.IsRegister() && destination.IsStackSlot()) {
|
|
Exchange(source.reg(), destination.base_reg(),
|
|
destination.ToStackSlotOffset());
|
|
} else if (source.IsStackSlot() && destination.IsRegister()) {
|
|
Exchange(destination.reg(), source.base_reg(), source.ToStackSlotOffset());
|
|
} else if (source.IsStackSlot() && destination.IsStackSlot()) {
|
|
Exchange(source.base_reg(), source.ToStackSlotOffset(),
|
|
destination.base_reg(), destination.ToStackSlotOffset());
|
|
} else if (source.IsFpuRegister() && destination.IsFpuRegister()) {
|
|
const VRegister dst = destination.fpu_reg();
|
|
const VRegister src = source.fpu_reg();
|
|
__ vmov(VTMP, src);
|
|
__ vmov(src, dst);
|
|
__ vmov(dst, VTMP);
|
|
} else if (source.IsFpuRegister() || destination.IsFpuRegister()) {
|
|
ASSERT(destination.IsDoubleStackSlot() || destination.IsQuadStackSlot() ||
|
|
source.IsDoubleStackSlot() || source.IsQuadStackSlot());
|
|
bool double_width =
|
|
destination.IsDoubleStackSlot() || source.IsDoubleStackSlot();
|
|
VRegister reg =
|
|
source.IsFpuRegister() ? source.fpu_reg() : destination.fpu_reg();
|
|
Register base_reg =
|
|
source.IsFpuRegister() ? destination.base_reg() : source.base_reg();
|
|
const intptr_t slot_offset = source.IsFpuRegister()
|
|
? destination.ToStackSlotOffset()
|
|
: source.ToStackSlotOffset();
|
|
|
|
if (double_width) {
|
|
__ LoadDFromOffset(VTMP, base_reg, slot_offset);
|
|
__ StoreDToOffset(reg, base_reg, slot_offset);
|
|
__ fmovdd(reg, VTMP);
|
|
} else {
|
|
__ LoadQFromOffset(VTMP, base_reg, slot_offset);
|
|
__ StoreQToOffset(reg, base_reg, slot_offset);
|
|
__ vmov(reg, VTMP);
|
|
}
|
|
} else if (source.IsDoubleStackSlot() && destination.IsDoubleStackSlot()) {
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
|
|
ScratchFpuRegisterScope ensure_scratch(this, kNoFpuRegister);
|
|
VRegister scratch = ensure_scratch.reg();
|
|
__ LoadDFromOffset(VTMP, source.base_reg(), source_offset);
|
|
__ LoadDFromOffset(scratch, destination.base_reg(), dest_offset);
|
|
__ StoreDToOffset(VTMP, destination.base_reg(), dest_offset);
|
|
__ StoreDToOffset(scratch, source.base_reg(), source_offset);
|
|
} else if (source.IsQuadStackSlot() && destination.IsQuadStackSlot()) {
|
|
const intptr_t source_offset = source.ToStackSlotOffset();
|
|
const intptr_t dest_offset = destination.ToStackSlotOffset();
|
|
|
|
ScratchFpuRegisterScope ensure_scratch(this, kNoFpuRegister);
|
|
VRegister scratch = ensure_scratch.reg();
|
|
__ LoadQFromOffset(VTMP, source.base_reg(), source_offset);
|
|
__ LoadQFromOffset(scratch, destination.base_reg(), dest_offset);
|
|
__ StoreQToOffset(VTMP, destination.base_reg(), dest_offset);
|
|
__ StoreQToOffset(scratch, source.base_reg(), source_offset);
|
|
} else {
|
|
UNREACHABLE();
|
|
}
|
|
}
|
|
|
|
void ParallelMoveEmitter::MoveMemoryToMemory(const compiler::Address& dst,
|
|
const compiler::Address& src) {
|
|
UNREACHABLE();
|
|
}
|
|
|
|
// Do not call or implement this function. Instead, use the form below that
|
|
// uses an offset from the frame pointer instead of an Address.
|
|
void ParallelMoveEmitter::Exchange(Register reg, const compiler::Address& mem) {
|
|
UNREACHABLE();
|
|
}
|
|
|
|
// Do not call or implement this function. Instead, use the form below that
|
|
// uses offsets from the frame pointer instead of Addresses.
|
|
void ParallelMoveEmitter::Exchange(const compiler::Address& mem1,
|
|
const compiler::Address& mem2) {
|
|
UNREACHABLE();
|
|
}
|
|
|
|
void ParallelMoveEmitter::Exchange(Register reg,
|
|
Register base_reg,
|
|
intptr_t stack_offset) {
|
|
ScratchRegisterScope tmp(this, reg);
|
|
__ mov(tmp.reg(), reg);
|
|
__ LoadFromOffset(reg, base_reg, stack_offset);
|
|
__ StoreToOffset(tmp.reg(), base_reg, stack_offset);
|
|
}
|
|
|
|
void ParallelMoveEmitter::Exchange(Register base_reg1,
|
|
intptr_t stack_offset1,
|
|
Register base_reg2,
|
|
intptr_t stack_offset2) {
|
|
ScratchRegisterScope tmp1(this, kNoRegister);
|
|
ScratchRegisterScope tmp2(this, tmp1.reg());
|
|
__ LoadFromOffset(tmp1.reg(), base_reg1, stack_offset1);
|
|
__ LoadFromOffset(tmp2.reg(), base_reg2, stack_offset2);
|
|
__ StoreToOffset(tmp1.reg(), base_reg2, stack_offset2);
|
|
__ StoreToOffset(tmp2.reg(), base_reg1, stack_offset1);
|
|
}
|
|
|
|
void ParallelMoveEmitter::SpillScratch(Register reg) {
|
|
__ Push(reg);
|
|
}
|
|
|
|
void ParallelMoveEmitter::RestoreScratch(Register reg) {
|
|
__ Pop(reg);
|
|
}
|
|
|
|
void ParallelMoveEmitter::SpillFpuScratch(FpuRegister reg) {
|
|
__ PushQuad(reg);
|
|
}
|
|
|
|
void ParallelMoveEmitter::RestoreFpuScratch(FpuRegister reg) {
|
|
__ PopQuad(reg);
|
|
}
|
|
|
|
#undef __
|
|
|
|
} // namespace dart
|
|
|
|
#endif // defined(TARGET_ARCH_ARM64)
|