30a12a349e
This reverts commiteff1a9ff97. Reason for revert: Causes flaky hits of RELEASE_ASSERT in marker.cc, see b/151131634. Original change's description: > Re-land "[vm] Aggressive write-barrier elimination." > > The original revision is in Patchset 3. > > Four bugs were fixed: > > 1. JoinEntryInstr::SuccessorCount() is not the correct way to get the > number of successor blocks from the Join block; > JoinEntryInstr::last_instruction()->SuccessorCount() must be used > instead. > > 2. BitVector::Equals() was non-deterministically returning 'false' > for equal vectors. > > 3. All blocks need to be processed at least once during the Analysis > phase (not only in the SaveResults phase). > > 4. We were not removing write barriers from StoreIndexed instructions, > even though we had support for it. > > This reverts commit7fd8ad5a2d. > > Fixes https://github.com/dart-lang/sdk/issues/40780 > > Change-Id: I9650ec2c547ec49cf88ca0524e14f6c245621f6a > Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/138086 > Commit-Queue: Samir Jindel <sjindel@google.com> > Reviewed-by: Martin Kustermann <kustermann@google.com> > Reviewed-by: Ryan Macnak <rmacnak@google.com> TBR=kustermann@google.com,rmacnak@google.com,sjindel@google.com Change-Id: If9afd84465175fad2431405a97e9293c8bd5e476 No-Presubmit: true No-Tree-Checks: true No-Try: true Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/138808 Reviewed-by: Martin Kustermann <kustermann@google.com> Commit-Queue: Martin Kustermann <kustermann@google.com>
2791 lines
104 KiB
C++
2791 lines
104 KiB
C++
// Copyright (c) 2013, 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/compiler/backend/flow_graph_compiler.h"
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#include "vm/globals.h" // Needed here to get TARGET_ARCH_XXX.
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#include "platform/utils.h"
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#include "vm/bit_vector.h"
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#include "vm/compiler/backend/code_statistics.h"
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#include "vm/compiler/backend/il_printer.h"
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#include "vm/compiler/backend/inliner.h"
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#include "vm/compiler/backend/linearscan.h"
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#include "vm/compiler/backend/locations.h"
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#include "vm/compiler/backend/loops.h"
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#include "vm/compiler/cha.h"
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#include "vm/compiler/intrinsifier.h"
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#include "vm/compiler/jit/compiler.h"
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#include "vm/dart_entry.h"
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#include "vm/debugger.h"
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#include "vm/deopt_instructions.h"
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#include "vm/exceptions.h"
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#include "vm/flags.h"
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#include "vm/kernel_isolate.h"
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#include "vm/log.h"
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#include "vm/longjump.h"
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#include "vm/object_store.h"
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#include "vm/parser.h"
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#include "vm/raw_object.h"
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#include "vm/resolver.h"
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#include "vm/service_isolate.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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#include "vm/timeline.h"
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#include "vm/type_testing_stubs.h"
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namespace dart {
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DEFINE_FLAG(bool,
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trace_inlining_intervals,
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false,
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"Inlining interval diagnostics");
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DEFINE_FLAG(bool, enable_peephole, true, "Enable peephole optimization");
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#if !defined(DART_PRECOMPILED_RUNTIME)
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DEFINE_FLAG(bool,
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enable_simd_inline,
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true,
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"Enable inlining of SIMD related method calls.");
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DEFINE_FLAG(int,
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min_optimization_counter_threshold,
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5000,
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"The minimum invocation count for a function.");
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DEFINE_FLAG(int,
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optimization_counter_scale,
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2000,
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"The scale of invocation count, by size of the function.");
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DEFINE_FLAG(bool, source_lines, false, "Emit source line as assembly comment.");
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DECLARE_FLAG(charp, deoptimize_filter);
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DECLARE_FLAG(bool, intrinsify);
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DECLARE_FLAG(int, regexp_optimization_counter_threshold);
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DECLARE_FLAG(int, reoptimization_counter_threshold);
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DECLARE_FLAG(int, stacktrace_every);
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DECLARE_FLAG(charp, stacktrace_filter);
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DECLARE_FLAG(int, gc_every);
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DECLARE_FLAG(bool, trace_compiler);
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// Assign locations to incoming arguments, i.e., values pushed above spill slots
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// with PushArgument. Recursively allocates from outermost to innermost
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// environment.
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void CompilerDeoptInfo::AllocateIncomingParametersRecursive(
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Environment* env,
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intptr_t* stack_height) {
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if (env == NULL) return;
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AllocateIncomingParametersRecursive(env->outer(), stack_height);
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for (Environment::ShallowIterator it(env); !it.Done(); it.Advance()) {
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if (it.CurrentLocation().IsInvalid() &&
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it.CurrentValue()->definition()->IsPushArgument()) {
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it.SetCurrentLocation(Location::StackSlot(
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compiler::target::frame_layout.FrameSlotForVariableIndex(
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-*stack_height),
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FPREG));
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(*stack_height)++;
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}
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}
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}
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void CompilerDeoptInfo::EmitMaterializations(Environment* env,
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DeoptInfoBuilder* builder) {
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for (Environment::DeepIterator it(env); !it.Done(); it.Advance()) {
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if (it.CurrentLocation().IsInvalid()) {
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MaterializeObjectInstr* mat =
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it.CurrentValue()->definition()->AsMaterializeObject();
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ASSERT(mat != NULL);
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builder->AddMaterialization(mat);
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}
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}
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}
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FlowGraphCompiler::FlowGraphCompiler(
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compiler::Assembler* assembler,
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FlowGraph* flow_graph,
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const ParsedFunction& parsed_function,
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bool is_optimizing,
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SpeculativeInliningPolicy* speculative_policy,
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const GrowableArray<const Function*>& inline_id_to_function,
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const GrowableArray<TokenPosition>& inline_id_to_token_pos,
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const GrowableArray<intptr_t>& caller_inline_id,
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ZoneGrowableArray<const ICData*>* deopt_id_to_ic_data,
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CodeStatistics* stats /* = NULL */)
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: thread_(Thread::Current()),
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zone_(Thread::Current()->zone()),
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assembler_(assembler),
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parsed_function_(parsed_function),
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flow_graph_(*flow_graph),
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block_order_(*flow_graph->CodegenBlockOrder(is_optimizing)),
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current_block_(nullptr),
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exception_handlers_list_(nullptr),
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pc_descriptors_list_(nullptr),
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compressed_stackmaps_builder_(nullptr),
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code_source_map_builder_(nullptr),
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catch_entry_moves_maps_builder_(nullptr),
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block_info_(block_order_.length()),
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deopt_infos_(),
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static_calls_target_table_(),
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indirect_gotos_(),
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is_optimizing_(is_optimizing),
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speculative_policy_(speculative_policy),
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may_reoptimize_(false),
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intrinsic_mode_(false),
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stats_(stats),
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double_class_(
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Class::ZoneHandle(isolate()->object_store()->double_class())),
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mint_class_(Class::ZoneHandle(isolate()->object_store()->mint_class())),
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float32x4_class_(
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Class::ZoneHandle(isolate()->object_store()->float32x4_class())),
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float64x2_class_(
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Class::ZoneHandle(isolate()->object_store()->float64x2_class())),
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int32x4_class_(
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Class::ZoneHandle(isolate()->object_store()->int32x4_class())),
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list_class_(Class::ZoneHandle(Library::Handle(Library::CoreLibrary())
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.LookupClass(Symbols::List()))),
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parallel_move_resolver_(this),
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pending_deoptimization_env_(NULL),
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deopt_id_to_ic_data_(deopt_id_to_ic_data),
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edge_counters_array_(Array::ZoneHandle()) {
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ASSERT(flow_graph->parsed_function().function().raw() ==
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parsed_function.function().raw());
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if (is_optimizing) {
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// No need to collect extra ICData objects created during compilation.
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deopt_id_to_ic_data_ = nullptr;
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} else {
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const intptr_t len = thread()->compiler_state().deopt_id();
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deopt_id_to_ic_data_->EnsureLength(len, nullptr);
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}
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ASSERT(assembler != NULL);
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ASSERT(!list_class_.IsNull());
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#if defined(PRODUCT)
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const bool stack_traces_only = true;
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#else
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const bool stack_traces_only = false;
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#endif
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code_source_map_builder_ = new (zone_)
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CodeSourceMapBuilder(stack_traces_only, caller_inline_id,
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inline_id_to_token_pos, inline_id_to_function);
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ArchSpecificInitialization();
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}
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bool FlowGraphCompiler::IsUnboxedField(const Field& field) {
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bool valid_class;
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if (FLAG_precompiled_mode) {
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valid_class =
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(SupportsUnboxedDoubles() && (field.guarded_cid() == kDoubleCid)) ||
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(SupportsUnboxedSimd128() && (field.guarded_cid() == kFloat32x4Cid)) ||
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(SupportsUnboxedSimd128() && (field.guarded_cid() == kFloat64x2Cid)) ||
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field.is_non_nullable_integer();
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} else {
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valid_class =
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(SupportsUnboxedDoubles() && (field.guarded_cid() == kDoubleCid)) ||
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(SupportsUnboxedSimd128() && (field.guarded_cid() == kFloat32x4Cid)) ||
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(SupportsUnboxedSimd128() && (field.guarded_cid() == kFloat64x2Cid));
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}
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return field.is_unboxing_candidate() && !field.is_nullable() && valid_class;
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}
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bool FlowGraphCompiler::IsPotentialUnboxedField(const Field& field) {
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if (FLAG_precompiled_mode) {
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// kernel_loader.cc:ReadInferredType sets the guarded cid for fields based
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// on inferred types from TFA (if available). The guarded cid is therefore
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// proven to be correct.
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return IsUnboxedField(field);
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}
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return field.is_unboxing_candidate() &&
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(FlowGraphCompiler::IsUnboxedField(field) ||
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(field.guarded_cid() == kIllegalCid));
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}
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void FlowGraphCompiler::InitCompiler() {
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pc_descriptors_list_ = new (zone()) DescriptorList(64);
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exception_handlers_list_ = new (zone()) ExceptionHandlerList();
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#if defined(DART_PRECOMPILER)
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catch_entry_moves_maps_builder_ = new (zone()) CatchEntryMovesMapBuilder();
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#endif
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block_info_.Clear();
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// Initialize block info and search optimized (non-OSR) code for calls
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// indicating a non-leaf routine and calls without IC data indicating
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// possible reoptimization.
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for (int i = 0; i < block_order_.length(); ++i) {
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block_info_.Add(new (zone()) BlockInfo());
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if (is_optimizing() && !flow_graph().IsCompiledForOsr()) {
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BlockEntryInstr* entry = block_order_[i];
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for (ForwardInstructionIterator it(entry); !it.Done(); it.Advance()) {
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Instruction* current = it.Current();
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if (current->IsBranch()) {
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current = current->AsBranch()->comparison();
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}
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// In optimized code, ICData is always set in the instructions.
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const ICData* ic_data = NULL;
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if (current->IsInstanceCall()) {
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ic_data = current->AsInstanceCall()->ic_data();
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}
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if ((ic_data != NULL) && (ic_data->NumberOfUsedChecks() == 0)) {
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may_reoptimize_ = true;
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}
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}
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}
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}
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if (!is_optimizing() && FLAG_reorder_basic_blocks) {
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// Initialize edge counter array.
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const intptr_t num_counters = flow_graph_.preorder().length();
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const Array& edge_counters =
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Array::Handle(Array::New(num_counters, Heap::kOld));
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for (intptr_t i = 0; i < num_counters; ++i) {
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edge_counters.SetAt(i, Object::smi_zero());
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}
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edge_counters_array_ = edge_counters.raw();
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}
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}
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bool FlowGraphCompiler::CanOptimize() {
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return FLAG_optimization_counter_threshold >= 0;
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}
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bool FlowGraphCompiler::CanOptimizeFunction() const {
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return CanOptimize() && !parsed_function().function().HasBreakpoint();
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}
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bool FlowGraphCompiler::CanOSRFunction() const {
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return isolate()->use_osr() && CanOptimizeFunction() && !is_optimizing();
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}
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void FlowGraphCompiler::InsertBSSRelocation(BSS::Relocation reloc) {
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const intptr_t offset = assembler()->InsertAlignedRelocation(reloc);
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AddDescriptor(RawPcDescriptors::kBSSRelocation, /*pc_offset=*/offset,
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/*deopt_id=*/DeoptId::kNone, TokenPosition::kNoSource,
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/*try_index=*/-1);
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}
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bool FlowGraphCompiler::ForceSlowPathForStackOverflow() const {
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#if !defined(PRODUCT)
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if ((FLAG_stacktrace_every > 0) || (FLAG_deoptimize_every > 0) ||
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(FLAG_gc_every > 0) ||
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(isolate()->reload_every_n_stack_overflow_checks() > 0)) {
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if (!Isolate::IsVMInternalIsolate(isolate())) {
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return true;
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}
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}
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if (FLAG_stacktrace_filter != NULL &&
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strstr(parsed_function().function().ToFullyQualifiedCString(),
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FLAG_stacktrace_filter) != NULL) {
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return true;
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}
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if (is_optimizing() && FLAG_deoptimize_filter != NULL &&
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strstr(parsed_function().function().ToFullyQualifiedCString(),
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FLAG_deoptimize_filter) != NULL) {
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return true;
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}
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#endif // !defined(PRODUCT)
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return false;
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}
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bool FlowGraphCompiler::IsEmptyBlock(BlockEntryInstr* block) const {
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// Entry-points cannot be merged because they must have assembly
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// prologue emitted which should not be included in any block they jump to.
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return !block->IsGraphEntry() && !block->IsFunctionEntry() &&
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!block->IsCatchBlockEntry() && !block->IsOsrEntry() &&
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!block->IsIndirectEntry() && !block->HasNonRedundantParallelMove() &&
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block->next()->IsGoto() &&
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!block->next()->AsGoto()->HasNonRedundantParallelMove();
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}
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void FlowGraphCompiler::CompactBlock(BlockEntryInstr* block) {
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BlockInfo* block_info = block_info_[block->postorder_number()];
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// Break out of cycles in the control flow graph.
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if (block_info->is_marked()) {
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return;
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}
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block_info->mark();
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if (IsEmptyBlock(block)) {
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// For empty blocks, record a corresponding nonempty target as their
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// jump label.
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BlockEntryInstr* target = block->next()->AsGoto()->successor();
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CompactBlock(target);
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block_info->set_jump_label(GetJumpLabel(target));
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}
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}
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void FlowGraphCompiler::CompactBlocks() {
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// This algorithm does not garbage collect blocks in place, but merely
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// records forwarding label information. In this way it avoids having to
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// change join and target entries.
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compiler::Label* nonempty_label = NULL;
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for (intptr_t i = block_order().length() - 1; i >= 1; --i) {
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BlockEntryInstr* block = block_order()[i];
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// Unoptimized code must emit all possible deoptimization points.
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if (is_optimizing()) {
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CompactBlock(block);
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}
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// For nonempty blocks, record the next nonempty block in the block
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// order. Since no code is emitted for empty blocks, control flow is
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// eligible to fall through to the next nonempty one.
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if (!WasCompacted(block)) {
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BlockInfo* block_info = block_info_[block->postorder_number()];
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block_info->set_next_nonempty_label(nonempty_label);
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nonempty_label = GetJumpLabel(block);
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}
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}
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ASSERT(block_order()[0]->IsGraphEntry());
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BlockInfo* block_info = block_info_[block_order()[0]->postorder_number()];
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block_info->set_next_nonempty_label(nonempty_label);
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}
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#if defined(DART_PRECOMPILER)
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static intptr_t LocationToStackIndex(const Location& src) {
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ASSERT(src.HasStackIndex());
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return -compiler::target::frame_layout.VariableIndexForFrameSlot(
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src.stack_index());
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}
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static CatchEntryMove CatchEntryMoveFor(compiler::Assembler* assembler,
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Representation src_type,
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const Location& src,
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intptr_t dst_index) {
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if (src.IsConstant()) {
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// Skip dead locations.
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if (src.constant().raw() == Symbols::OptimizedOut().raw()) {
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return CatchEntryMove();
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}
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const intptr_t pool_index =
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assembler->object_pool_builder().FindObject(src.constant());
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return CatchEntryMove::FromSlot(CatchEntryMove::SourceKind::kConstant,
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pool_index, dst_index);
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}
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if (src.IsPairLocation()) {
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const auto lo_loc = src.AsPairLocation()->At(0);
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const auto hi_loc = src.AsPairLocation()->At(1);
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ASSERT(lo_loc.IsStackSlot() && hi_loc.IsStackSlot());
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return CatchEntryMove::FromSlot(
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CatchEntryMove::SourceKind::kInt64PairSlot,
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CatchEntryMove::EncodePairSource(LocationToStackIndex(lo_loc),
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LocationToStackIndex(hi_loc)),
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dst_index);
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}
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CatchEntryMove::SourceKind src_kind;
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switch (src_type) {
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case kTagged:
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src_kind = CatchEntryMove::SourceKind::kTaggedSlot;
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break;
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case kUnboxedInt64:
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src_kind = CatchEntryMove::SourceKind::kInt64Slot;
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break;
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case kUnboxedInt32:
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src_kind = CatchEntryMove::SourceKind::kInt32Slot;
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break;
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case kUnboxedUint32:
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src_kind = CatchEntryMove::SourceKind::kUint32Slot;
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break;
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case kUnboxedDouble:
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src_kind = CatchEntryMove::SourceKind::kDoubleSlot;
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break;
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case kUnboxedFloat32x4:
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src_kind = CatchEntryMove::SourceKind::kFloat32x4Slot;
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break;
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case kUnboxedFloat64x2:
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src_kind = CatchEntryMove::SourceKind::kFloat64x2Slot;
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break;
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case kUnboxedInt32x4:
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src_kind = CatchEntryMove::SourceKind::kInt32x4Slot;
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break;
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default:
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UNREACHABLE();
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break;
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}
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return CatchEntryMove::FromSlot(src_kind, LocationToStackIndex(src),
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dst_index);
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}
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#endif
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void FlowGraphCompiler::RecordCatchEntryMoves(Environment* env,
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intptr_t try_index) {
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#if defined(DART_PRECOMPILER)
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env = env ? env : pending_deoptimization_env_;
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try_index = try_index != kInvalidTryIndex ? try_index : CurrentTryIndex();
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if (is_optimizing() && env != nullptr && (try_index != kInvalidTryIndex)) {
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env = env->Outermost();
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CatchBlockEntryInstr* catch_block =
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flow_graph().graph_entry()->GetCatchEntry(try_index);
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const GrowableArray<Definition*>* idefs =
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catch_block->initial_definitions();
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catch_entry_moves_maps_builder_->NewMapping(assembler()->CodeSize());
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const intptr_t num_direct_parameters = flow_graph().num_direct_parameters();
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const intptr_t ex_idx =
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catch_block->raw_exception_var() != nullptr
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? flow_graph().EnvIndex(catch_block->raw_exception_var())
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: -1;
|
|
const intptr_t st_idx =
|
|
catch_block->raw_stacktrace_var() != nullptr
|
|
? flow_graph().EnvIndex(catch_block->raw_stacktrace_var())
|
|
: -1;
|
|
for (intptr_t i = 0; i < flow_graph().variable_count(); ++i) {
|
|
// Don't sync captured parameters. They are not in the environment.
|
|
if (flow_graph().captured_parameters()->Contains(i)) continue;
|
|
// Don't sync exception or stack trace variables.
|
|
if (i == ex_idx || i == st_idx) continue;
|
|
// Don't sync values that have been replaced with constants.
|
|
if ((*idefs)[i]->IsConstant()) continue;
|
|
|
|
Location src = env->LocationAt(i);
|
|
// Can only occur if AllocationSinking is enabled - and it is disabled
|
|
// in functions with try.
|
|
ASSERT(!src.IsInvalid());
|
|
const Representation src_type =
|
|
env->ValueAt(i)->definition()->representation();
|
|
intptr_t dest_index = i - num_direct_parameters;
|
|
const auto move =
|
|
CatchEntryMoveFor(assembler(), src_type, src, dest_index);
|
|
if (!move.IsRedundant()) {
|
|
catch_entry_moves_maps_builder_->Append(move);
|
|
}
|
|
}
|
|
|
|
catch_entry_moves_maps_builder_->EndMapping();
|
|
}
|
|
#endif // defined(DART_PRECOMPILER) || defined(DART_PRECOMPILED_RUNTIME)
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitCallsiteMetadata(TokenPosition token_pos,
|
|
intptr_t deopt_id,
|
|
RawPcDescriptors::Kind kind,
|
|
LocationSummary* locs,
|
|
Environment* env) {
|
|
AddCurrentDescriptor(kind, deopt_id, token_pos);
|
|
RecordSafepoint(locs);
|
|
RecordCatchEntryMoves(env);
|
|
if ((deopt_id != DeoptId::kNone) && !FLAG_precompiled_mode) {
|
|
// Marks either the continuation point in unoptimized code or the
|
|
// deoptimization point in optimized code, after call.
|
|
const intptr_t deopt_id_after = DeoptId::ToDeoptAfter(deopt_id);
|
|
if (is_optimizing()) {
|
|
AddDeoptIndexAtCall(deopt_id_after);
|
|
} else {
|
|
// Add deoptimization continuation point after the call and before the
|
|
// arguments are removed.
|
|
AddCurrentDescriptor(RawPcDescriptors::kDeopt, deopt_id_after, token_pos);
|
|
}
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitYieldPositionMetadata(TokenPosition token_pos,
|
|
intptr_t yield_index) {
|
|
AddDescriptor(RawPcDescriptors::kOther, assembler()->CodeSize(),
|
|
DeoptId::kNone, token_pos, CurrentTryIndex(), yield_index);
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitInstructionPrologue(Instruction* instr) {
|
|
if (!is_optimizing()) {
|
|
if (instr->CanBecomeDeoptimizationTarget() && !instr->IsGoto()) {
|
|
// Instructions that can be deoptimization targets need to record kDeopt
|
|
// PcDescriptor corresponding to their deopt id. GotoInstr records its
|
|
// own so that it can control the placement.
|
|
AddCurrentDescriptor(RawPcDescriptors::kDeopt, instr->deopt_id(),
|
|
instr->token_pos());
|
|
}
|
|
AllocateRegistersLocally(instr);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitSourceLine(Instruction* instr) {
|
|
if (!instr->token_pos().IsReal() || (instr->env() == NULL)) {
|
|
return;
|
|
}
|
|
const Script& script =
|
|
Script::Handle(zone(), instr->env()->function().script());
|
|
intptr_t line_nr;
|
|
intptr_t column_nr;
|
|
script.GetTokenLocation(instr->token_pos(), &line_nr, &column_nr);
|
|
const String& line = String::Handle(zone(), script.GetLine(line_nr));
|
|
assembler()->Comment("Line %" Pd " in '%s':\n %s", line_nr,
|
|
instr->env()->function().ToFullyQualifiedCString(),
|
|
line.ToCString());
|
|
}
|
|
|
|
static bool IsPusher(Instruction* instr) {
|
|
if (auto def = instr->AsDefinition()) {
|
|
return def->HasTemp();
|
|
}
|
|
return false;
|
|
}
|
|
|
|
static bool IsPopper(Instruction* instr) {
|
|
// TODO(ajcbik): even allow deopt targets by making environment aware?
|
|
if (!instr->CanBecomeDeoptimizationTarget()) {
|
|
return !instr->IsPushArgument() && instr->ArgumentCount() == 0 &&
|
|
instr->InputCount() > 0;
|
|
}
|
|
return false;
|
|
}
|
|
|
|
bool FlowGraphCompiler::IsPeephole(Instruction* instr) const {
|
|
if (FLAG_enable_peephole && !is_optimizing()) {
|
|
return IsPusher(instr) && IsPopper(instr->next());
|
|
}
|
|
return false;
|
|
}
|
|
|
|
void FlowGraphCompiler::VisitBlocks() {
|
|
CompactBlocks();
|
|
if (compiler::Assembler::EmittingComments()) {
|
|
// The loop_info fields were cleared, recompute.
|
|
flow_graph().ComputeLoops();
|
|
}
|
|
|
|
// In precompiled mode, we require the function entry to come first (after the
|
|
// graph entry), since the polymorphic check is performed in the function
|
|
// entry (see Instructions::EntryPoint).
|
|
if (FLAG_precompiled_mode) {
|
|
ASSERT(block_order()[1] == flow_graph().graph_entry()->normal_entry());
|
|
}
|
|
|
|
for (intptr_t i = 0; i < block_order().length(); ++i) {
|
|
// Compile the block entry.
|
|
BlockEntryInstr* entry = block_order()[i];
|
|
assembler()->Comment("B%" Pd "", entry->block_id());
|
|
set_current_block(entry);
|
|
|
|
if (WasCompacted(entry)) {
|
|
continue;
|
|
}
|
|
|
|
#if defined(DEBUG)
|
|
if (!is_optimizing()) {
|
|
FrameStateClear();
|
|
}
|
|
#endif
|
|
|
|
if (compiler::Assembler::EmittingComments()) {
|
|
for (LoopInfo* l = entry->loop_info(); l != nullptr; l = l->outer()) {
|
|
assembler()->Comment(" Loop %" Pd "", l->id());
|
|
}
|
|
}
|
|
|
|
BeginCodeSourceRange();
|
|
ASSERT(pending_deoptimization_env_ == NULL);
|
|
pending_deoptimization_env_ = entry->env();
|
|
set_current_instruction(entry);
|
|
StatsBegin(entry);
|
|
entry->EmitNativeCode(this);
|
|
StatsEnd(entry);
|
|
set_current_instruction(nullptr);
|
|
pending_deoptimization_env_ = NULL;
|
|
EndCodeSourceRange(entry->token_pos());
|
|
|
|
if (skip_body_compilation()) {
|
|
ASSERT(entry == flow_graph().graph_entry()->normal_entry());
|
|
break;
|
|
}
|
|
|
|
// Compile all successors until an exit, branch, or a block entry.
|
|
for (ForwardInstructionIterator it(entry); !it.Done(); it.Advance()) {
|
|
Instruction* instr = it.Current();
|
|
set_current_instruction(instr);
|
|
StatsBegin(instr);
|
|
|
|
// Compose intervals.
|
|
code_source_map_builder_->StartInliningInterval(assembler()->CodeSize(),
|
|
instr->inlining_id());
|
|
if (FLAG_code_comments || FLAG_disassemble ||
|
|
FLAG_disassemble_optimized) {
|
|
if (FLAG_source_lines) {
|
|
EmitSourceLine(instr);
|
|
}
|
|
EmitComment(instr);
|
|
}
|
|
if (instr->IsParallelMove()) {
|
|
parallel_move_resolver_.EmitNativeCode(instr->AsParallelMove());
|
|
} else {
|
|
BeginCodeSourceRange();
|
|
EmitInstructionPrologue(instr);
|
|
ASSERT(pending_deoptimization_env_ == NULL);
|
|
pending_deoptimization_env_ = instr->env();
|
|
instr->EmitNativeCode(this);
|
|
pending_deoptimization_env_ = NULL;
|
|
if (IsPeephole(instr)) {
|
|
ASSERT(top_of_stack_ == nullptr);
|
|
top_of_stack_ = instr->AsDefinition();
|
|
} else {
|
|
EmitInstructionEpilogue(instr);
|
|
}
|
|
EndCodeSourceRange(instr->token_pos());
|
|
}
|
|
|
|
#if defined(DEBUG)
|
|
if (!is_optimizing()) {
|
|
FrameStateUpdateWith(instr);
|
|
}
|
|
#endif
|
|
StatsEnd(instr);
|
|
set_current_instruction(nullptr);
|
|
|
|
if (auto indirect_goto = instr->AsIndirectGoto()) {
|
|
indirect_gotos_.Add(indirect_goto);
|
|
}
|
|
}
|
|
|
|
#if defined(DEBUG)
|
|
ASSERT(is_optimizing() || FrameStateIsSafeToCall());
|
|
#endif
|
|
}
|
|
|
|
set_current_block(NULL);
|
|
}
|
|
|
|
void FlowGraphCompiler::Bailout(const char* reason) {
|
|
parsed_function_.Bailout("FlowGraphCompiler", reason);
|
|
}
|
|
|
|
intptr_t FlowGraphCompiler::StackSize() const {
|
|
if (is_optimizing_) {
|
|
return flow_graph_.graph_entry()->spill_slot_count();
|
|
} else {
|
|
return parsed_function_.num_stack_locals();
|
|
}
|
|
}
|
|
|
|
intptr_t FlowGraphCompiler::ExtraStackSlotsOnOsrEntry() const {
|
|
ASSERT(flow_graph().IsCompiledForOsr());
|
|
const intptr_t stack_depth =
|
|
flow_graph().graph_entry()->osr_entry()->stack_depth();
|
|
const intptr_t num_stack_locals = flow_graph().num_stack_locals();
|
|
return StackSize() - stack_depth - num_stack_locals;
|
|
}
|
|
|
|
compiler::Label* FlowGraphCompiler::GetJumpLabel(
|
|
BlockEntryInstr* block_entry) const {
|
|
const intptr_t block_index = block_entry->postorder_number();
|
|
return block_info_[block_index]->jump_label();
|
|
}
|
|
|
|
bool FlowGraphCompiler::WasCompacted(BlockEntryInstr* block_entry) const {
|
|
const intptr_t block_index = block_entry->postorder_number();
|
|
return block_info_[block_index]->WasCompacted();
|
|
}
|
|
|
|
compiler::Label* FlowGraphCompiler::NextNonEmptyLabel() const {
|
|
const intptr_t current_index = current_block()->postorder_number();
|
|
return block_info_[current_index]->next_nonempty_label();
|
|
}
|
|
|
|
bool FlowGraphCompiler::CanFallThroughTo(BlockEntryInstr* block_entry) const {
|
|
return NextNonEmptyLabel() == GetJumpLabel(block_entry);
|
|
}
|
|
|
|
BranchLabels FlowGraphCompiler::CreateBranchLabels(BranchInstr* branch) const {
|
|
compiler::Label* true_label = GetJumpLabel(branch->true_successor());
|
|
compiler::Label* false_label = GetJumpLabel(branch->false_successor());
|
|
compiler::Label* fall_through = NextNonEmptyLabel();
|
|
BranchLabels result = {true_label, false_label, fall_through};
|
|
return result;
|
|
}
|
|
|
|
void FlowGraphCompiler::AddSlowPathCode(SlowPathCode* code) {
|
|
slow_path_code_.Add(code);
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateDeferredCode() {
|
|
for (intptr_t i = 0; i < slow_path_code_.length(); i++) {
|
|
SlowPathCode* const slow_path = slow_path_code_[i];
|
|
const CombinedCodeStatistics::EntryCounter stats_tag =
|
|
CombinedCodeStatistics::SlowPathCounterFor(
|
|
slow_path->instruction()->tag());
|
|
set_current_instruction(slow_path->instruction());
|
|
SpecialStatsBegin(stats_tag);
|
|
BeginCodeSourceRange();
|
|
slow_path->GenerateCode(this);
|
|
EndCodeSourceRange(slow_path->instruction()->token_pos());
|
|
SpecialStatsEnd(stats_tag);
|
|
set_current_instruction(nullptr);
|
|
}
|
|
for (intptr_t i = 0; i < deopt_infos_.length(); i++) {
|
|
BeginCodeSourceRange();
|
|
deopt_infos_[i]->GenerateCode(this, i);
|
|
EndCodeSourceRange(TokenPosition::kDeferredDeoptInfo);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::AddExceptionHandler(intptr_t try_index,
|
|
intptr_t outer_try_index,
|
|
intptr_t pc_offset,
|
|
bool is_generated,
|
|
const Array& handler_types,
|
|
bool needs_stacktrace) {
|
|
exception_handlers_list_->AddHandler(try_index, outer_try_index, pc_offset,
|
|
is_generated, handler_types,
|
|
needs_stacktrace);
|
|
}
|
|
|
|
void FlowGraphCompiler::SetNeedsStackTrace(intptr_t try_index) {
|
|
exception_handlers_list_->SetNeedsStackTrace(try_index);
|
|
}
|
|
|
|
void FlowGraphCompiler::AddDescriptor(RawPcDescriptors::Kind kind,
|
|
intptr_t pc_offset,
|
|
intptr_t deopt_id,
|
|
TokenPosition token_pos,
|
|
intptr_t try_index,
|
|
intptr_t yield_index) {
|
|
code_source_map_builder_->NoteDescriptor(kind, pc_offset, token_pos);
|
|
// Don't emit deopt-descriptors in AOT mode.
|
|
if (FLAG_precompiled_mode && (kind == RawPcDescriptors::kDeopt)) return;
|
|
pc_descriptors_list_->AddDescriptor(kind, pc_offset, deopt_id, token_pos,
|
|
try_index, yield_index);
|
|
}
|
|
|
|
// Uses current pc position and try-index.
|
|
void FlowGraphCompiler::AddCurrentDescriptor(RawPcDescriptors::Kind kind,
|
|
intptr_t deopt_id,
|
|
TokenPosition token_pos) {
|
|
AddDescriptor(kind, assembler()->CodeSize(), deopt_id, token_pos,
|
|
CurrentTryIndex());
|
|
}
|
|
|
|
void FlowGraphCompiler::AddNullCheck(TokenPosition token_pos,
|
|
const String& name) {
|
|
// If we have DWARF stack traces enabled, the AOT runtime is unable to obtain
|
|
// the pool index at runtime. There is therefore no reason to put the name
|
|
// into the pool in the first place.
|
|
// TODO(dartbug.com/40605): Move this info to the pc descriptors.
|
|
if (!FLAG_dwarf_stack_traces) {
|
|
const intptr_t name_index =
|
|
assembler()->object_pool_builder().FindObject(name);
|
|
code_source_map_builder_->NoteNullCheck(assembler()->CodeSize(), token_pos,
|
|
name_index);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::AddPcRelativeCallTarget(const Function& function,
|
|
Code::EntryKind entry_kind) {
|
|
ASSERT(function.IsZoneHandle());
|
|
const auto entry_point = entry_kind == Code::EntryKind::kUnchecked
|
|
? Code::kUncheckedEntry
|
|
: Code::kDefaultEntry;
|
|
static_calls_target_table_.Add(
|
|
new (zone()) StaticCallsStruct(Code::kPcRelativeCall, entry_point,
|
|
assembler()->CodeSize(), &function, NULL));
|
|
}
|
|
|
|
void FlowGraphCompiler::AddPcRelativeCallStubTarget(const Code& stub_code) {
|
|
ASSERT(stub_code.IsZoneHandle() || stub_code.IsReadOnlyHandle());
|
|
ASSERT(!stub_code.IsNull());
|
|
static_calls_target_table_.Add(new (zone()) StaticCallsStruct(
|
|
Code::kPcRelativeCall, Code::kDefaultEntry, assembler()->CodeSize(), NULL,
|
|
&stub_code));
|
|
}
|
|
|
|
void FlowGraphCompiler::AddStaticCallTarget(const Function& func,
|
|
Code::EntryKind entry_kind) {
|
|
ASSERT(func.IsZoneHandle());
|
|
const auto entry_point = entry_kind == Code::EntryKind::kUnchecked
|
|
? Code::kUncheckedEntry
|
|
: Code::kDefaultEntry;
|
|
static_calls_target_table_.Add(new (zone()) StaticCallsStruct(
|
|
Code::kCallViaCode, entry_point, assembler()->CodeSize(), &func, NULL));
|
|
}
|
|
|
|
void FlowGraphCompiler::AddStubCallTarget(const Code& code) {
|
|
ASSERT(code.IsZoneHandle() || code.IsReadOnlyHandle());
|
|
static_calls_target_table_.Add(
|
|
new (zone()) StaticCallsStruct(Code::kCallViaCode, Code::kDefaultEntry,
|
|
assembler()->CodeSize(), NULL, &code));
|
|
}
|
|
|
|
void FlowGraphCompiler::AddDispatchTableCallTarget(
|
|
const compiler::TableSelector* selector) {
|
|
dispatch_table_call_targets_.Add(selector);
|
|
}
|
|
|
|
CompilerDeoptInfo* FlowGraphCompiler::AddDeoptIndexAtCall(intptr_t deopt_id) {
|
|
ASSERT(is_optimizing());
|
|
ASSERT(!intrinsic_mode());
|
|
ASSERT(!FLAG_precompiled_mode);
|
|
CompilerDeoptInfo* info =
|
|
new (zone()) CompilerDeoptInfo(deopt_id, ICData::kDeoptAtCall,
|
|
0, // No flags.
|
|
pending_deoptimization_env_);
|
|
info->set_pc_offset(assembler()->CodeSize());
|
|
deopt_infos_.Add(info);
|
|
return info;
|
|
}
|
|
|
|
CompilerDeoptInfo* FlowGraphCompiler::AddSlowPathDeoptInfo(intptr_t deopt_id,
|
|
Environment* env) {
|
|
ASSERT(deopt_id != DeoptId::kNone);
|
|
CompilerDeoptInfo* info =
|
|
new (zone()) CompilerDeoptInfo(deopt_id, ICData::kDeoptUnknown, 0, env);
|
|
info->set_pc_offset(assembler()->CodeSize());
|
|
deopt_infos_.Add(info);
|
|
return info;
|
|
}
|
|
|
|
// This function must be in sync with FlowGraphCompiler::SaveLiveRegisters
|
|
// and FlowGraphCompiler::SlowPathEnvironmentFor.
|
|
// See StackFrame::VisitObjectPointers for the details of how stack map is
|
|
// interpreted.
|
|
void FlowGraphCompiler::RecordSafepoint(LocationSummary* locs,
|
|
intptr_t slow_path_argument_count) {
|
|
if (is_optimizing() || locs->live_registers()->HasUntaggedValues()) {
|
|
const intptr_t spill_area_size =
|
|
is_optimizing() ? flow_graph_.graph_entry()->spill_slot_count() : 0;
|
|
|
|
RegisterSet* registers = locs->live_registers();
|
|
ASSERT(registers != NULL);
|
|
const intptr_t kFpuRegisterSpillFactor =
|
|
kFpuRegisterSize / compiler::target::kWordSize;
|
|
intptr_t saved_registers_size = 0;
|
|
const bool using_shared_stub = locs->call_on_shared_slow_path();
|
|
if (using_shared_stub) {
|
|
saved_registers_size =
|
|
Utils::CountOneBitsWord(kDartAvailableCpuRegs) +
|
|
(registers->FpuRegisterCount() > 0
|
|
? kFpuRegisterSpillFactor * kNumberOfFpuRegisters
|
|
: 0) +
|
|
1 /*saved PC*/;
|
|
} else {
|
|
saved_registers_size =
|
|
registers->CpuRegisterCount() +
|
|
(registers->FpuRegisterCount() * kFpuRegisterSpillFactor);
|
|
}
|
|
|
|
BitmapBuilder* bitmap = locs->stack_bitmap();
|
|
|
|
// An instruction may have two safepoints in deferred code. The
|
|
// call to RecordSafepoint has the side-effect of appending the live
|
|
// registers to the bitmap. This is why the second call to RecordSafepoint
|
|
// with the same instruction (and same location summary) sees a bitmap that
|
|
// is larger that StackSize(). It will never be larger than StackSize() +
|
|
// unboxed_arg_bits_count + live_registers_size.
|
|
// The first safepoint will grow the bitmap to be the size of
|
|
// spill_area_size but the second safepoint will truncate the bitmap and
|
|
// append the bits for arguments and live registers to it again.
|
|
const intptr_t bitmap_previous_length = bitmap->Length();
|
|
bitmap->SetLength(spill_area_size);
|
|
|
|
intptr_t unboxed_arg_bits_count = 0;
|
|
|
|
auto instr = current_instruction();
|
|
const intptr_t args_count = instr->ArgumentCount();
|
|
bool pushed_unboxed = false;
|
|
|
|
for (intptr_t i = 0; i < args_count; i++) {
|
|
auto push_arg =
|
|
instr->ArgumentValueAt(i)->instruction()->AsPushArgument();
|
|
switch (push_arg->representation()) {
|
|
case kUnboxedInt64:
|
|
bitmap->SetRange(
|
|
bitmap->Length(),
|
|
bitmap->Length() + compiler::target::kIntSpillFactor - 1, false);
|
|
unboxed_arg_bits_count += compiler::target::kIntSpillFactor;
|
|
pushed_unboxed = true;
|
|
break;
|
|
case kUnboxedDouble:
|
|
bitmap->SetRange(
|
|
bitmap->Length(),
|
|
bitmap->Length() + compiler::target::kDoubleSpillFactor - 1,
|
|
false);
|
|
unboxed_arg_bits_count += compiler::target::kDoubleSpillFactor;
|
|
pushed_unboxed = true;
|
|
break;
|
|
case kTagged:
|
|
if (!pushed_unboxed) {
|
|
// GC considers everything to be tagged between prefix of stack
|
|
// frame (spill area size) and postfix of stack frame (e.g. slow
|
|
// path arguments, shared pushed registers).
|
|
// From the first unboxed argument on we will include bits in the
|
|
// postfix.
|
|
continue;
|
|
}
|
|
bitmap->Set(bitmap->Length(), true);
|
|
unboxed_arg_bits_count++;
|
|
break;
|
|
default:
|
|
UNREACHABLE();
|
|
break;
|
|
}
|
|
}
|
|
ASSERT(bitmap_previous_length <=
|
|
(spill_area_size + unboxed_arg_bits_count + saved_registers_size));
|
|
|
|
ASSERT(slow_path_argument_count == 0 || !using_shared_stub);
|
|
|
|
// Mark the bits in the stack map in the same order we push registers in
|
|
// slow path code (see FlowGraphCompiler::SaveLiveRegisters).
|
|
//
|
|
// Slow path code can have registers at the safepoint.
|
|
if (!locs->always_calls() && !using_shared_stub) {
|
|
RegisterSet* regs = locs->live_registers();
|
|
if (regs->FpuRegisterCount() > 0) {
|
|
// Denote FPU registers with 0 bits in the stackmap. Based on the
|
|
// assumption that there are normally few live FPU registers, this
|
|
// encoding is simpler and roughly as compact as storing a separate
|
|
// count of FPU registers.
|
|
//
|
|
// FPU registers have the highest register number at the highest
|
|
// address (i.e., first in the stackmap).
|
|
for (intptr_t i = kNumberOfFpuRegisters - 1; i >= 0; --i) {
|
|
FpuRegister reg = static_cast<FpuRegister>(i);
|
|
if (regs->ContainsFpuRegister(reg)) {
|
|
for (intptr_t j = 0; j < kFpuRegisterSpillFactor; ++j) {
|
|
bitmap->Set(bitmap->Length(), false);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
// General purpose registers have the highest register number at the
|
|
// highest address (i.e., first in the stackmap).
|
|
for (intptr_t i = kNumberOfCpuRegisters - 1; i >= 0; --i) {
|
|
Register reg = static_cast<Register>(i);
|
|
if (locs->live_registers()->ContainsRegister(reg)) {
|
|
bitmap->Set(bitmap->Length(), locs->live_registers()->IsTagged(reg));
|
|
}
|
|
}
|
|
}
|
|
|
|
if (using_shared_stub) {
|
|
// To simplify the code in the shared stub, we create an untagged hole
|
|
// in the stack frame where the shared stub can leave the return address
|
|
// before saving registers.
|
|
bitmap->Set(bitmap->Length(), false);
|
|
if (registers->FpuRegisterCount() > 0) {
|
|
bitmap->SetRange(bitmap->Length(),
|
|
bitmap->Length() +
|
|
kNumberOfFpuRegisters * kFpuRegisterSpillFactor -
|
|
1,
|
|
false);
|
|
}
|
|
for (intptr_t i = kNumberOfCpuRegisters - 1; i >= 0; --i) {
|
|
if ((kReservedCpuRegisters & (1 << i)) != 0) continue;
|
|
const Register reg = static_cast<Register>(i);
|
|
bitmap->Set(bitmap->Length(),
|
|
locs->live_registers()->ContainsRegister(reg) &&
|
|
locs->live_registers()->IsTagged(reg));
|
|
}
|
|
}
|
|
|
|
// Arguments pushed after live registers in the slow path are tagged.
|
|
for (intptr_t i = 0; i < slow_path_argument_count; ++i) {
|
|
bitmap->Set(bitmap->Length(), true);
|
|
}
|
|
|
|
compressed_stackmaps_builder()->AddEntry(assembler()->CodeSize(), bitmap,
|
|
spill_area_size);
|
|
}
|
|
}
|
|
|
|
// This function must be kept in sync with:
|
|
//
|
|
// FlowGraphCompiler::RecordSafepoint
|
|
// FlowGraphCompiler::SaveLiveRegisters
|
|
// MaterializeObjectInstr::RemapRegisters
|
|
//
|
|
Environment* FlowGraphCompiler::SlowPathEnvironmentFor(
|
|
Environment* env,
|
|
LocationSummary* locs,
|
|
intptr_t num_slow_path_args) {
|
|
const bool using_shared_stub = locs->call_on_shared_slow_path();
|
|
const bool shared_stub_save_fpu_registers =
|
|
using_shared_stub && locs->live_registers()->FpuRegisterCount() > 0;
|
|
// TODO(sjindel): Modify logic below to account for slow-path args with shared
|
|
// stubs.
|
|
ASSERT(!using_shared_stub || num_slow_path_args == 0);
|
|
if (env == nullptr) {
|
|
// In AOT, environments can be removed by EliminateEnvironments pass
|
|
// (if not in a try block).
|
|
ASSERT(!is_optimizing() || FLAG_precompiled_mode);
|
|
return nullptr;
|
|
}
|
|
|
|
Environment* slow_path_env = env->DeepCopy(zone());
|
|
// 1. Iterate the registers in the order they will be spilled to compute
|
|
// the slots they will be spilled to.
|
|
intptr_t next_slot = StackSize() + slow_path_env->CountArgsPushed();
|
|
if (using_shared_stub) {
|
|
// The PC from the call to the shared stub is pushed here.
|
|
next_slot++;
|
|
}
|
|
RegisterSet* regs = locs->live_registers();
|
|
intptr_t fpu_reg_slots[kNumberOfFpuRegisters];
|
|
intptr_t cpu_reg_slots[kNumberOfCpuRegisters];
|
|
const intptr_t kFpuRegisterSpillFactor =
|
|
kFpuRegisterSize / compiler::target::kWordSize;
|
|
// FPU registers are spilled first from highest to lowest register number.
|
|
for (intptr_t i = kNumberOfFpuRegisters - 1; i >= 0; --i) {
|
|
FpuRegister reg = static_cast<FpuRegister>(i);
|
|
if (regs->ContainsFpuRegister(reg)) {
|
|
// We use the lowest address (thus highest index) to identify a
|
|
// multi-word spill slot.
|
|
next_slot += kFpuRegisterSpillFactor;
|
|
fpu_reg_slots[i] = (next_slot - 1);
|
|
} else {
|
|
if (using_shared_stub && shared_stub_save_fpu_registers) {
|
|
next_slot += kFpuRegisterSpillFactor;
|
|
}
|
|
fpu_reg_slots[i] = -1;
|
|
}
|
|
}
|
|
// General purpose registers are spilled from highest to lowest register
|
|
// number.
|
|
for (intptr_t i = kNumberOfCpuRegisters - 1; i >= 0; --i) {
|
|
if ((kReservedCpuRegisters & (1 << i)) != 0) continue;
|
|
Register reg = static_cast<Register>(i);
|
|
if (regs->ContainsRegister(reg)) {
|
|
cpu_reg_slots[i] = next_slot++;
|
|
} else {
|
|
if (using_shared_stub) next_slot++;
|
|
cpu_reg_slots[i] = -1;
|
|
}
|
|
}
|
|
|
|
// 2. Iterate the environment and replace register locations with the
|
|
// corresponding spill slot locations.
|
|
for (Environment::DeepIterator it(slow_path_env); !it.Done(); it.Advance()) {
|
|
Location loc = it.CurrentLocation();
|
|
Value* value = it.CurrentValue();
|
|
it.SetCurrentLocation(LocationRemapForSlowPath(
|
|
loc, value->definition(), cpu_reg_slots, fpu_reg_slots));
|
|
}
|
|
|
|
return slow_path_env;
|
|
}
|
|
|
|
compiler::Label* FlowGraphCompiler::AddDeoptStub(intptr_t deopt_id,
|
|
ICData::DeoptReasonId reason,
|
|
uint32_t flags) {
|
|
if (intrinsic_mode()) {
|
|
return intrinsic_slow_path_label_;
|
|
}
|
|
|
|
// No deoptimization allowed when 'FLAG_precompiled_mode' is set.
|
|
if (FLAG_precompiled_mode) {
|
|
if (FLAG_trace_compiler) {
|
|
THR_Print(
|
|
"Retrying compilation %s, suppressing inlining of deopt_id:%" Pd "\n",
|
|
parsed_function_.function().ToFullyQualifiedCString(), deopt_id);
|
|
}
|
|
ASSERT(speculative_policy_->AllowsSpeculativeInlining());
|
|
ASSERT(deopt_id != 0); // longjmp must return non-zero value.
|
|
Thread::Current()->long_jump_base()->Jump(
|
|
deopt_id, Object::speculative_inlining_error());
|
|
}
|
|
|
|
ASSERT(is_optimizing_);
|
|
CompilerDeoptInfoWithStub* stub = new (zone()) CompilerDeoptInfoWithStub(
|
|
deopt_id, reason, flags, pending_deoptimization_env_);
|
|
deopt_infos_.Add(stub);
|
|
return stub->entry_label();
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizeExceptionHandlers(const Code& code) {
|
|
ASSERT(exception_handlers_list_ != NULL);
|
|
const ExceptionHandlers& handlers = ExceptionHandlers::Handle(
|
|
exception_handlers_list_->FinalizeExceptionHandlers(code.PayloadStart()));
|
|
code.set_exception_handlers(handlers);
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizePcDescriptors(const Code& code) {
|
|
ASSERT(pc_descriptors_list_ != NULL);
|
|
const PcDescriptors& descriptors = PcDescriptors::Handle(
|
|
pc_descriptors_list_->FinalizePcDescriptors(code.PayloadStart()));
|
|
if (!is_optimizing_) descriptors.Verify(parsed_function_.function());
|
|
code.set_pc_descriptors(descriptors);
|
|
}
|
|
|
|
RawArray* FlowGraphCompiler::CreateDeoptInfo(compiler::Assembler* assembler) {
|
|
// No deopt information if we precompile (no deoptimization allowed).
|
|
if (FLAG_precompiled_mode) {
|
|
return Array::empty_array().raw();
|
|
}
|
|
// For functions with optional arguments, all incoming arguments are copied
|
|
// to spill slots. The deoptimization environment does not track them.
|
|
const Function& function = parsed_function().function();
|
|
const intptr_t incoming_arg_count =
|
|
function.HasOptionalParameters() ? 0 : function.num_fixed_parameters();
|
|
DeoptInfoBuilder builder(zone(), incoming_arg_count, assembler);
|
|
|
|
intptr_t deopt_info_table_size = DeoptTable::SizeFor(deopt_infos_.length());
|
|
if (deopt_info_table_size == 0) {
|
|
return Object::empty_array().raw();
|
|
} else {
|
|
const Array& array =
|
|
Array::Handle(Array::New(deopt_info_table_size, Heap::kOld));
|
|
Smi& offset = Smi::Handle();
|
|
TypedData& info = TypedData::Handle();
|
|
Smi& reason_and_flags = Smi::Handle();
|
|
for (intptr_t i = 0; i < deopt_infos_.length(); i++) {
|
|
offset = Smi::New(deopt_infos_[i]->pc_offset());
|
|
info = deopt_infos_[i]->CreateDeoptInfo(this, &builder, array);
|
|
reason_and_flags = DeoptTable::EncodeReasonAndFlags(
|
|
deopt_infos_[i]->reason(), deopt_infos_[i]->flags());
|
|
DeoptTable::SetEntry(array, i, offset, info, reason_and_flags);
|
|
}
|
|
return array.raw();
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizeStackMaps(const Code& code) {
|
|
if (compressed_stackmaps_builder_ == NULL) {
|
|
code.set_compressed_stackmaps(
|
|
CompressedStackMaps::Handle(CompressedStackMaps::null()));
|
|
} else {
|
|
// Finalize the compressed stack maps and add it to the code object.
|
|
const auto& maps =
|
|
CompressedStackMaps::Handle(compressed_stackmaps_builder_->Finalize());
|
|
code.set_compressed_stackmaps(maps);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizeVarDescriptors(const Code& code) {
|
|
#if defined(PRODUCT)
|
|
// No debugger: no var descriptors.
|
|
#else
|
|
if (code.is_optimized()) {
|
|
// Optimized code does not need variable descriptors. They are
|
|
// only stored in the unoptimized version.
|
|
code.set_var_descriptors(Object::empty_var_descriptors());
|
|
return;
|
|
}
|
|
LocalVarDescriptors& var_descs = LocalVarDescriptors::Handle();
|
|
if (flow_graph().IsIrregexpFunction()) {
|
|
// Eager local var descriptors computation for Irregexp function as it is
|
|
// complicated to factor out.
|
|
// TODO(srdjan): Consider canonicalizing and reusing the local var
|
|
// descriptor for IrregexpFunction.
|
|
ASSERT(parsed_function().scope() == nullptr);
|
|
var_descs = LocalVarDescriptors::New(1);
|
|
RawLocalVarDescriptors::VarInfo info;
|
|
info.set_kind(RawLocalVarDescriptors::kSavedCurrentContext);
|
|
info.scope_id = 0;
|
|
info.begin_pos = TokenPosition::kMinSource;
|
|
info.end_pos = TokenPosition::kMinSource;
|
|
info.set_index(compiler::target::frame_layout.FrameSlotForVariable(
|
|
parsed_function().current_context_var()));
|
|
var_descs.SetVar(0, Symbols::CurrentContextVar(), &info);
|
|
}
|
|
code.set_var_descriptors(var_descs);
|
|
#endif
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizeCatchEntryMovesMap(const Code& code) {
|
|
#if defined(DART_PRECOMPILER)
|
|
if (FLAG_precompiled_mode) {
|
|
TypedData& maps = TypedData::Handle(
|
|
catch_entry_moves_maps_builder_->FinalizeCatchEntryMovesMap());
|
|
code.set_catch_entry_moves_maps(maps);
|
|
return;
|
|
}
|
|
#endif
|
|
code.set_num_variables(flow_graph().variable_count());
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizeStaticCallTargetsTable(const Code& code) {
|
|
ASSERT(code.static_calls_target_table() == Array::null());
|
|
const auto& calls = static_calls_target_table_;
|
|
const intptr_t array_length = calls.length() * Code::kSCallTableEntryLength;
|
|
const auto& targets =
|
|
Array::Handle(zone(), Array::New(array_length, Heap::kOld));
|
|
|
|
StaticCallsTable entries(targets);
|
|
auto& kind_type_and_offset = Smi::Handle(zone());
|
|
for (intptr_t i = 0; i < calls.length(); i++) {
|
|
auto entry = calls[i];
|
|
kind_type_and_offset =
|
|
Smi::New(Code::KindField::encode(entry->call_kind) |
|
|
Code::EntryPointField::encode(entry->entry_point) |
|
|
Code::OffsetField::encode(entry->offset));
|
|
auto view = entries[i];
|
|
view.Set<Code::kSCallTableKindAndOffset>(kind_type_and_offset);
|
|
const Object* target = nullptr;
|
|
if (entry->function != nullptr) {
|
|
view.Set<Code::kSCallTableFunctionTarget>(*calls[i]->function);
|
|
}
|
|
if (entry->code != NULL) {
|
|
ASSERT(target == nullptr);
|
|
view.Set<Code::kSCallTableCodeTarget>(*calls[i]->code);
|
|
}
|
|
}
|
|
code.set_static_calls_target_table(targets);
|
|
}
|
|
|
|
void FlowGraphCompiler::FinalizeCodeSourceMap(const Code& code) {
|
|
const Array& inlined_id_array =
|
|
Array::Handle(zone(), code_source_map_builder_->InliningIdToFunction());
|
|
code.set_inlined_id_to_function(inlined_id_array);
|
|
|
|
const CodeSourceMap& map =
|
|
CodeSourceMap::Handle(code_source_map_builder_->Finalize());
|
|
code.set_code_source_map(map);
|
|
|
|
#if defined(DEBUG)
|
|
// Force simulation through the last pc offset. This checks we can decode
|
|
// the whole CodeSourceMap without hitting an unknown opcode, stack underflow,
|
|
// etc.
|
|
GrowableArray<const Function*> fs;
|
|
GrowableArray<TokenPosition> tokens;
|
|
code.GetInlinedFunctionsAtInstruction(code.Size() - 1, &fs, &tokens);
|
|
#endif
|
|
}
|
|
|
|
// Returns 'true' if regular code generation should be skipped.
|
|
bool FlowGraphCompiler::TryIntrinsify() {
|
|
if (TryIntrinsifyHelper()) {
|
|
fully_intrinsified_ = true;
|
|
return true;
|
|
}
|
|
return false;
|
|
}
|
|
|
|
bool FlowGraphCompiler::TryIntrinsifyHelper() {
|
|
compiler::Label exit;
|
|
set_intrinsic_slow_path_label(&exit);
|
|
|
|
if (FLAG_intrinsify) {
|
|
// Intrinsification skips arguments checks, therefore disable if in checked
|
|
// mode or strong mode.
|
|
//
|
|
// Though for implicit getters, which have only the receiver as parameter,
|
|
// there are no checks necessary in any case and we can therefore intrinsify
|
|
// them even in checked mode and strong mode.
|
|
switch (parsed_function().function().kind()) {
|
|
case RawFunction::kImplicitGetter: {
|
|
Field& field = Field::Handle(function().accessor_field());
|
|
ASSERT(!field.IsNull());
|
|
#if defined(DEBUG)
|
|
// HACK: Clone the field to ignore assertion in Field::guarded_cid().
|
|
// The assertion is intended to ensure that the background compiler sees
|
|
// consistent cids, but that's not important in this case because
|
|
// IsPotentialUnboxedField can go from true to false, but not false to
|
|
// true, and we only do this optimisation if it is false.
|
|
field = field.CloneFromOriginal();
|
|
#endif
|
|
|
|
// Only intrinsify getter if the field cannot contain a mutable double.
|
|
// Reading from a mutable double box requires allocating a fresh double.
|
|
if (field.is_instance() && !field.needs_load_guard() &&
|
|
!field.is_late() && !IsPotentialUnboxedField(field)) {
|
|
SpecialStatsBegin(CombinedCodeStatistics::kTagIntrinsics);
|
|
GenerateGetterIntrinsic(compiler::target::Field::OffsetOf(field));
|
|
SpecialStatsEnd(CombinedCodeStatistics::kTagIntrinsics);
|
|
return true;
|
|
}
|
|
return false;
|
|
}
|
|
case RawFunction::kImplicitSetter: {
|
|
if (!isolate()->argument_type_checks()) {
|
|
Field& field = Field::Handle(function().accessor_field());
|
|
ASSERT(!field.IsNull());
|
|
#if defined(DEBUG)
|
|
// HACK: Clone the field to ignore assertion in Field::guarded_cid().
|
|
// The same reasons as above apply, but we only check if it's dynamic.
|
|
field = field.CloneFromOriginal();
|
|
#endif
|
|
|
|
if (field.is_instance() && field.guarded_cid() == kDynamicCid) {
|
|
SpecialStatsBegin(CombinedCodeStatistics::kTagIntrinsics);
|
|
GenerateSetterIntrinsic(compiler::target::Field::OffsetOf(field));
|
|
SpecialStatsEnd(CombinedCodeStatistics::kTagIntrinsics);
|
|
return true;
|
|
}
|
|
return false;
|
|
}
|
|
break;
|
|
}
|
|
#if !defined(TARGET_ARCH_IA32)
|
|
case RawFunction::kMethodExtractor: {
|
|
auto& extracted_method = Function::ZoneHandle(
|
|
parsed_function().function().extracted_method_closure());
|
|
auto& klass = Class::Handle(extracted_method.Owner());
|
|
const intptr_t type_arguments_field_offset =
|
|
compiler::target::Class::HasTypeArgumentsField(klass)
|
|
? (compiler::target::Class::TypeArgumentsFieldOffset(klass) -
|
|
kHeapObjectTag)
|
|
: 0;
|
|
|
|
SpecialStatsBegin(CombinedCodeStatistics::kTagIntrinsics);
|
|
GenerateMethodExtractorIntrinsic(extracted_method,
|
|
type_arguments_field_offset);
|
|
SpecialStatsEnd(CombinedCodeStatistics::kTagIntrinsics);
|
|
return true;
|
|
}
|
|
#endif // !defined(TARGET_ARCH_IA32)
|
|
default:
|
|
break;
|
|
}
|
|
}
|
|
|
|
EnterIntrinsicMode();
|
|
|
|
SpecialStatsBegin(CombinedCodeStatistics::kTagIntrinsics);
|
|
bool complete = compiler::Intrinsifier::Intrinsify(parsed_function(), this);
|
|
SpecialStatsEnd(CombinedCodeStatistics::kTagIntrinsics);
|
|
|
|
ExitIntrinsicMode();
|
|
|
|
// "Deoptimization" from intrinsic continues here. All deoptimization
|
|
// branches from intrinsic code redirect to here where the slow-path
|
|
// (normal function body) starts.
|
|
// This means that there must not be any side-effects in intrinsic code
|
|
// before any deoptimization point.
|
|
assembler()->Bind(intrinsic_slow_path_label());
|
|
set_intrinsic_slow_path_label(nullptr);
|
|
return complete;
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateCallWithDeopt(TokenPosition token_pos,
|
|
intptr_t deopt_id,
|
|
const Code& stub,
|
|
RawPcDescriptors::Kind kind,
|
|
LocationSummary* locs) {
|
|
GenerateCall(token_pos, stub, kind, locs);
|
|
if (!FLAG_precompiled_mode) {
|
|
const intptr_t deopt_id_after = DeoptId::ToDeoptAfter(deopt_id);
|
|
if (is_optimizing()) {
|
|
AddDeoptIndexAtCall(deopt_id_after);
|
|
} else {
|
|
// Add deoptimization continuation point after the call and before the
|
|
// arguments are removed.
|
|
AddCurrentDescriptor(RawPcDescriptors::kDeopt, deopt_id_after, token_pos);
|
|
}
|
|
}
|
|
}
|
|
|
|
static const Code& StubEntryFor(const ICData& ic_data, bool optimized) {
|
|
switch (ic_data.NumArgsTested()) {
|
|
case 1:
|
|
#if defined(TARGET_ARCH_X64)
|
|
if (ic_data.is_tracking_exactness()) {
|
|
if (optimized) {
|
|
return StubCode::OneArgOptimizedCheckInlineCacheWithExactnessCheck();
|
|
} else {
|
|
return StubCode::OneArgCheckInlineCacheWithExactnessCheck();
|
|
}
|
|
}
|
|
#else
|
|
// TODO(dartbug.com/34170) Port exactness tracking to other platforms.
|
|
ASSERT(!ic_data.is_tracking_exactness());
|
|
#endif
|
|
return optimized ? StubCode::OneArgOptimizedCheckInlineCache()
|
|
: StubCode::OneArgCheckInlineCache();
|
|
case 2:
|
|
ASSERT(!ic_data.is_tracking_exactness());
|
|
return optimized ? StubCode::TwoArgsOptimizedCheckInlineCache()
|
|
: StubCode::TwoArgsCheckInlineCache();
|
|
default:
|
|
ic_data.Print();
|
|
UNIMPLEMENTED();
|
|
return Code::Handle();
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateInstanceCall(intptr_t deopt_id,
|
|
TokenPosition token_pos,
|
|
LocationSummary* locs,
|
|
const ICData& ic_data_in,
|
|
Code::EntryKind entry_kind,
|
|
bool receiver_can_be_smi) {
|
|
ICData& ic_data = ICData::ZoneHandle(ic_data_in.Original());
|
|
if (FLAG_precompiled_mode) {
|
|
ic_data = ic_data.AsUnaryClassChecks();
|
|
EmitInstanceCallAOT(ic_data, deopt_id, token_pos, locs, entry_kind,
|
|
receiver_can_be_smi);
|
|
return;
|
|
}
|
|
ASSERT(!ic_data.IsNull());
|
|
if (is_optimizing() && (ic_data_in.NumberOfUsedChecks() == 0)) {
|
|
// Emit IC call that will count and thus may need reoptimization at
|
|
// function entry.
|
|
ASSERT(may_reoptimize() || flow_graph().IsCompiledForOsr());
|
|
EmitOptimizedInstanceCall(StubEntryFor(ic_data, /*optimized=*/true),
|
|
ic_data, deopt_id, token_pos, locs, entry_kind);
|
|
return;
|
|
}
|
|
|
|
if (is_optimizing()) {
|
|
EmitMegamorphicInstanceCall(ic_data_in, deopt_id, token_pos, locs,
|
|
kInvalidTryIndex);
|
|
return;
|
|
}
|
|
|
|
EmitInstanceCallJIT(StubEntryFor(ic_data, /*optimized=*/false), ic_data,
|
|
deopt_id, token_pos, locs, entry_kind);
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateStaticCall(intptr_t deopt_id,
|
|
TokenPosition token_pos,
|
|
const Function& function,
|
|
ArgumentsInfo args_info,
|
|
LocationSummary* locs,
|
|
const ICData& ic_data_in,
|
|
ICData::RebindRule rebind_rule,
|
|
Code::EntryKind entry_kind) {
|
|
const ICData& ic_data = ICData::ZoneHandle(ic_data_in.Original());
|
|
const Array& arguments_descriptor = Array::ZoneHandle(
|
|
zone(), ic_data.IsNull() ? args_info.ToArgumentsDescriptor()
|
|
: ic_data.arguments_descriptor());
|
|
ASSERT(ArgumentsDescriptor(arguments_descriptor).TypeArgsLen() ==
|
|
args_info.type_args_len);
|
|
ASSERT(ArgumentsDescriptor(arguments_descriptor).Count() ==
|
|
args_info.count_without_type_args);
|
|
ASSERT(ArgumentsDescriptor(arguments_descriptor).Size() ==
|
|
args_info.size_without_type_args);
|
|
// Force-optimized functions lack the deopt info which allows patching of
|
|
// optimized static calls.
|
|
if (is_optimizing() && (!ForcedOptimization() || FLAG_precompiled_mode)) {
|
|
EmitOptimizedStaticCall(function, arguments_descriptor,
|
|
args_info.size_with_type_args, deopt_id, token_pos,
|
|
locs, entry_kind);
|
|
} else {
|
|
ICData& call_ic_data = ICData::ZoneHandle(zone(), ic_data.raw());
|
|
if (call_ic_data.IsNull()) {
|
|
const intptr_t kNumArgsChecked = 0;
|
|
call_ic_data =
|
|
GetOrAddStaticCallICData(deopt_id, function, arguments_descriptor,
|
|
kNumArgsChecked, rebind_rule)
|
|
->raw();
|
|
call_ic_data = call_ic_data.Original();
|
|
}
|
|
AddCurrentDescriptor(RawPcDescriptors::kRewind, deopt_id, token_pos);
|
|
EmitUnoptimizedStaticCall(args_info.size_with_type_args, deopt_id,
|
|
token_pos, locs, call_ic_data, entry_kind);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateNumberTypeCheck(
|
|
Register class_id_reg,
|
|
const AbstractType& type,
|
|
compiler::Label* is_instance_lbl,
|
|
compiler::Label* is_not_instance_lbl) {
|
|
assembler()->Comment("NumberTypeCheck");
|
|
GrowableArray<intptr_t> args;
|
|
if (type.IsNumberType()) {
|
|
args.Add(kDoubleCid);
|
|
args.Add(kMintCid);
|
|
} else if (type.IsIntType()) {
|
|
args.Add(kMintCid);
|
|
} else if (type.IsDoubleType()) {
|
|
args.Add(kDoubleCid);
|
|
}
|
|
CheckClassIds(class_id_reg, args, is_instance_lbl, is_not_instance_lbl);
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateStringTypeCheck(
|
|
Register class_id_reg,
|
|
compiler::Label* is_instance_lbl,
|
|
compiler::Label* is_not_instance_lbl) {
|
|
assembler()->Comment("StringTypeCheck");
|
|
GrowableArray<intptr_t> args;
|
|
args.Add(kOneByteStringCid);
|
|
args.Add(kTwoByteStringCid);
|
|
args.Add(kExternalOneByteStringCid);
|
|
args.Add(kExternalTwoByteStringCid);
|
|
CheckClassIds(class_id_reg, args, is_instance_lbl, is_not_instance_lbl);
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateListTypeCheck(
|
|
Register class_id_reg,
|
|
compiler::Label* is_instance_lbl) {
|
|
assembler()->Comment("ListTypeCheck");
|
|
compiler::Label unknown;
|
|
GrowableArray<intptr_t> args;
|
|
args.Add(kArrayCid);
|
|
args.Add(kGrowableObjectArrayCid);
|
|
args.Add(kImmutableArrayCid);
|
|
CheckClassIds(class_id_reg, args, is_instance_lbl, &unknown);
|
|
assembler()->Bind(&unknown);
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitComment(Instruction* instr) {
|
|
if (!FLAG_support_il_printer || !FLAG_support_disassembler) {
|
|
return;
|
|
}
|
|
#ifndef PRODUCT
|
|
char buffer[256];
|
|
BufferFormatter f(buffer, sizeof(buffer));
|
|
instr->PrintTo(&f);
|
|
assembler()->Comment("%s", buffer);
|
|
#endif
|
|
}
|
|
|
|
bool FlowGraphCompiler::NeedsEdgeCounter(BlockEntryInstr* block) {
|
|
// Only emit an edge counter if there is not goto at the end of the block,
|
|
// except for the entry block.
|
|
return FLAG_reorder_basic_blocks &&
|
|
(!block->last_instruction()->IsGoto() || block->IsFunctionEntry());
|
|
}
|
|
|
|
// Allocate a register that is not explictly blocked.
|
|
static Register AllocateFreeRegister(bool* blocked_registers) {
|
|
for (intptr_t regno = 0; regno < kNumberOfCpuRegisters; regno++) {
|
|
if (!blocked_registers[regno]) {
|
|
blocked_registers[regno] = true;
|
|
return static_cast<Register>(regno);
|
|
}
|
|
}
|
|
UNREACHABLE();
|
|
return kNoRegister;
|
|
}
|
|
|
|
void FlowGraphCompiler::AllocateRegistersLocally(Instruction* instr) {
|
|
ASSERT(!is_optimizing());
|
|
instr->InitializeLocationSummary(zone(), false); // Not optimizing.
|
|
|
|
LocationSummary* locs = instr->locs();
|
|
|
|
bool blocked_registers[kNumberOfCpuRegisters];
|
|
|
|
// Connect input with peephole output for some special cases. All other
|
|
// cases are handled by simply allocating registers and generating code.
|
|
if (top_of_stack_ != nullptr) {
|
|
const intptr_t p = locs->input_count() - 1;
|
|
Location peephole = top_of_stack_->locs()->out(0);
|
|
if (locs->in(p).IsUnallocated() || locs->in(p).IsConstant()) {
|
|
// If input is unallocated, match with an output register, if set. Also,
|
|
// if input is a direct constant, but the peephole output is a register,
|
|
// use that register to avoid wasting the already generated code.
|
|
if (peephole.IsRegister()) {
|
|
locs->set_in(p, Location::RegisterLocation(peephole.reg()));
|
|
}
|
|
}
|
|
}
|
|
|
|
// Block all registers globally reserved by the assembler, etc and mark
|
|
// the rest as free.
|
|
for (intptr_t i = 0; i < kNumberOfCpuRegisters; i++) {
|
|
blocked_registers[i] = (kDartAvailableCpuRegs & (1 << i)) == 0;
|
|
}
|
|
|
|
// Mark all fixed input, temp and output registers as used.
|
|
for (intptr_t i = 0; i < locs->input_count(); i++) {
|
|
Location loc = locs->in(i);
|
|
if (loc.IsRegister()) {
|
|
// Check that a register is not specified twice in the summary.
|
|
ASSERT(!blocked_registers[loc.reg()]);
|
|
blocked_registers[loc.reg()] = true;
|
|
}
|
|
}
|
|
|
|
for (intptr_t i = 0; i < locs->temp_count(); i++) {
|
|
Location loc = locs->temp(i);
|
|
if (loc.IsRegister()) {
|
|
// Check that a register is not specified twice in the summary.
|
|
ASSERT(!blocked_registers[loc.reg()]);
|
|
blocked_registers[loc.reg()] = true;
|
|
}
|
|
}
|
|
|
|
if (locs->out(0).IsRegister()) {
|
|
// Fixed output registers are allowed to overlap with
|
|
// temps and inputs.
|
|
blocked_registers[locs->out(0).reg()] = true;
|
|
}
|
|
|
|
// Allocate all unallocated input locations.
|
|
const bool should_pop = !instr->IsPushArgument();
|
|
for (intptr_t i = locs->input_count() - 1; i >= 0; i--) {
|
|
Location loc = locs->in(i);
|
|
Register reg = kNoRegister;
|
|
if (loc.IsRegister()) {
|
|
reg = loc.reg();
|
|
} else if (loc.IsUnallocated()) {
|
|
ASSERT((loc.policy() == Location::kRequiresRegister) ||
|
|
(loc.policy() == Location::kWritableRegister) ||
|
|
(loc.policy() == Location::kPrefersRegister) ||
|
|
(loc.policy() == Location::kAny));
|
|
reg = AllocateFreeRegister(blocked_registers);
|
|
locs->set_in(i, Location::RegisterLocation(reg));
|
|
}
|
|
ASSERT(reg != kNoRegister || loc.IsConstant());
|
|
|
|
// Inputs are consumed from the simulated frame (or a peephole push/pop).
|
|
// In case of a call argument we leave it until the call instruction.
|
|
if (should_pop) {
|
|
if (top_of_stack_ != nullptr) {
|
|
if (!loc.IsConstant()) {
|
|
// Moves top of stack location of the peephole into the required
|
|
// input. None of the required moves needs a temp register allocator.
|
|
EmitMove(locs->in(i), top_of_stack_->locs()->out(0), nullptr);
|
|
}
|
|
top_of_stack_ = nullptr; // consumed!
|
|
} else if (loc.IsConstant()) {
|
|
assembler()->Drop(1);
|
|
} else {
|
|
assembler()->PopRegister(reg);
|
|
}
|
|
}
|
|
}
|
|
|
|
// Allocate all unallocated temp locations.
|
|
for (intptr_t i = 0; i < locs->temp_count(); i++) {
|
|
Location loc = locs->temp(i);
|
|
if (loc.IsUnallocated()) {
|
|
ASSERT(loc.policy() == Location::kRequiresRegister);
|
|
loc = Location::RegisterLocation(AllocateFreeRegister(blocked_registers));
|
|
locs->set_temp(i, loc);
|
|
}
|
|
}
|
|
|
|
Location result_location = locs->out(0);
|
|
if (result_location.IsUnallocated()) {
|
|
switch (result_location.policy()) {
|
|
case Location::kAny:
|
|
case Location::kPrefersRegister:
|
|
case Location::kRequiresRegister:
|
|
case Location::kWritableRegister:
|
|
result_location =
|
|
Location::RegisterLocation(AllocateFreeRegister(blocked_registers));
|
|
break;
|
|
case Location::kSameAsFirstInput:
|
|
result_location = locs->in(0);
|
|
break;
|
|
case Location::kRequiresFpuRegister:
|
|
UNREACHABLE();
|
|
break;
|
|
}
|
|
locs->set_out(0, result_location);
|
|
}
|
|
}
|
|
|
|
static uword RegMaskBit(Register reg) {
|
|
return ((reg) != kNoRegister) ? (1 << (reg)) : 0;
|
|
}
|
|
|
|
ParallelMoveResolver::ParallelMoveResolver(FlowGraphCompiler* compiler)
|
|
: compiler_(compiler), moves_(32) {}
|
|
|
|
void ParallelMoveResolver::EmitNativeCode(ParallelMoveInstr* parallel_move) {
|
|
ASSERT(moves_.is_empty());
|
|
// Build up a worklist of moves.
|
|
BuildInitialMoveList(parallel_move);
|
|
|
|
for (int i = 0; i < moves_.length(); ++i) {
|
|
const MoveOperands& move = *moves_[i];
|
|
// Skip constants to perform them last. They don't block other moves
|
|
// and skipping such moves with register destinations keeps those
|
|
// registers free for the whole algorithm.
|
|
if (!move.IsEliminated() && !move.src().IsConstant()) PerformMove(i);
|
|
}
|
|
|
|
// Perform the moves with constant sources.
|
|
for (int i = 0; i < moves_.length(); ++i) {
|
|
const MoveOperands& move = *moves_[i];
|
|
if (!move.IsEliminated()) {
|
|
ASSERT(move.src().IsConstant());
|
|
compiler_->BeginCodeSourceRange();
|
|
EmitMove(i);
|
|
compiler_->EndCodeSourceRange(TokenPosition::kParallelMove);
|
|
}
|
|
}
|
|
|
|
moves_.Clear();
|
|
}
|
|
|
|
void ParallelMoveResolver::BuildInitialMoveList(
|
|
ParallelMoveInstr* parallel_move) {
|
|
// Perform a linear sweep of the moves to add them to the initial list of
|
|
// moves to perform, ignoring any move that is redundant (the source is
|
|
// the same as the destination, the destination is ignored and
|
|
// unallocated, or the move was already eliminated).
|
|
for (int i = 0; i < parallel_move->NumMoves(); i++) {
|
|
MoveOperands* move = parallel_move->MoveOperandsAt(i);
|
|
if (!move->IsRedundant()) moves_.Add(move);
|
|
}
|
|
}
|
|
|
|
void ParallelMoveResolver::PerformMove(int index) {
|
|
// Each call to this function performs a move and deletes it from the move
|
|
// graph. We first recursively perform any move blocking this one. We
|
|
// mark a move as "pending" on entry to PerformMove in order to detect
|
|
// cycles in the move graph. We use operand swaps to resolve cycles,
|
|
// which means that a call to PerformMove could change any source operand
|
|
// in the move graph.
|
|
|
|
ASSERT(!moves_[index]->IsPending());
|
|
ASSERT(!moves_[index]->IsRedundant());
|
|
|
|
// Clear this move's destination to indicate a pending move. The actual
|
|
// destination is saved in a stack-allocated local. Recursion may allow
|
|
// multiple moves to be pending.
|
|
ASSERT(!moves_[index]->src().IsInvalid());
|
|
Location destination = moves_[index]->MarkPending();
|
|
|
|
// Perform a depth-first traversal of the move graph to resolve
|
|
// dependencies. Any unperformed, unpending move with a source the same
|
|
// as this one's destination blocks this one so recursively perform all
|
|
// such moves.
|
|
for (int i = 0; i < moves_.length(); ++i) {
|
|
const MoveOperands& other_move = *moves_[i];
|
|
if (other_move.Blocks(destination) && !other_move.IsPending()) {
|
|
// Though PerformMove can change any source operand in the move graph,
|
|
// this call cannot create a blocking move via a swap (this loop does
|
|
// not miss any). Assume there is a non-blocking move with source A
|
|
// and this move is blocked on source B and there is a swap of A and
|
|
// B. Then A and B must be involved in the same cycle (or they would
|
|
// not be swapped). Since this move's destination is B and there is
|
|
// only a single incoming edge to an operand, this move must also be
|
|
// involved in the same cycle. In that case, the blocking move will
|
|
// be created but will be "pending" when we return from PerformMove.
|
|
PerformMove(i);
|
|
}
|
|
}
|
|
|
|
// We are about to resolve this move and don't need it marked as
|
|
// pending, so restore its destination.
|
|
moves_[index]->ClearPending(destination);
|
|
|
|
// This move's source may have changed due to swaps to resolve cycles and
|
|
// so it may now be the last move in the cycle. If so remove it.
|
|
if (moves_[index]->src().Equals(destination)) {
|
|
moves_[index]->Eliminate();
|
|
return;
|
|
}
|
|
|
|
// The move may be blocked on a (at most one) pending move, in which case
|
|
// we have a cycle. Search for such a blocking move and perform a swap to
|
|
// resolve it.
|
|
for (int i = 0; i < moves_.length(); ++i) {
|
|
const MoveOperands& other_move = *moves_[i];
|
|
if (other_move.Blocks(destination)) {
|
|
ASSERT(other_move.IsPending());
|
|
compiler_->BeginCodeSourceRange();
|
|
EmitSwap(index);
|
|
compiler_->EndCodeSourceRange(TokenPosition::kParallelMove);
|
|
return;
|
|
}
|
|
}
|
|
|
|
// This move is not blocked.
|
|
compiler_->BeginCodeSourceRange();
|
|
EmitMove(index);
|
|
compiler_->EndCodeSourceRange(TokenPosition::kParallelMove);
|
|
}
|
|
|
|
void ParallelMoveResolver::EmitMove(int index) {
|
|
MoveOperands* const move = moves_[index];
|
|
const Location dst = move->dest();
|
|
if (dst.IsStackSlot() || dst.IsDoubleStackSlot()) {
|
|
ASSERT((dst.base_reg() != FPREG) ||
|
|
((-compiler::target::frame_layout.VariableIndexForFrameSlot(
|
|
dst.stack_index())) < compiler_->StackSize()));
|
|
}
|
|
const Location src = move->src();
|
|
ParallelMoveResolver::TemporaryAllocator temp(this, /*blocked=*/kNoRegister);
|
|
compiler_->EmitMove(dst, src, &temp);
|
|
#if defined(DEBUG)
|
|
// Allocating a scratch register here may cause stack spilling. Neither the
|
|
// source nor destination register should be SP-relative in that case.
|
|
for (const Location& loc : {dst, src}) {
|
|
ASSERT(!temp.DidAllocateTemporary() || !loc.HasStackIndex() ||
|
|
loc.base_reg() != SPREG);
|
|
}
|
|
#endif
|
|
move->Eliminate();
|
|
}
|
|
|
|
bool ParallelMoveResolver::IsScratchLocation(Location loc) {
|
|
for (int i = 0; i < moves_.length(); ++i) {
|
|
if (moves_[i]->Blocks(loc)) {
|
|
return false;
|
|
}
|
|
}
|
|
|
|
for (int i = 0; i < moves_.length(); ++i) {
|
|
if (moves_[i]->dest().Equals(loc)) {
|
|
return true;
|
|
}
|
|
}
|
|
|
|
return false;
|
|
}
|
|
|
|
intptr_t ParallelMoveResolver::AllocateScratchRegister(
|
|
Location::Kind kind,
|
|
uword blocked_mask,
|
|
intptr_t first_free_register,
|
|
intptr_t last_free_register,
|
|
bool* spilled) {
|
|
COMPILE_ASSERT(static_cast<intptr_t>(sizeof(blocked_mask)) * kBitsPerByte >=
|
|
kNumberOfFpuRegisters);
|
|
COMPILE_ASSERT(static_cast<intptr_t>(sizeof(blocked_mask)) * kBitsPerByte >=
|
|
kNumberOfCpuRegisters);
|
|
intptr_t scratch = -1;
|
|
for (intptr_t reg = first_free_register; reg <= last_free_register; reg++) {
|
|
if ((((1 << reg) & blocked_mask) == 0) &&
|
|
IsScratchLocation(Location::MachineRegisterLocation(kind, reg))) {
|
|
scratch = reg;
|
|
break;
|
|
}
|
|
}
|
|
|
|
if (scratch == -1) {
|
|
*spilled = true;
|
|
for (intptr_t reg = first_free_register; reg <= last_free_register; reg++) {
|
|
if (((1 << reg) & blocked_mask) == 0) {
|
|
scratch = reg;
|
|
break;
|
|
}
|
|
}
|
|
} else {
|
|
*spilled = false;
|
|
}
|
|
|
|
return scratch;
|
|
}
|
|
|
|
ParallelMoveResolver::ScratchFpuRegisterScope::ScratchFpuRegisterScope(
|
|
ParallelMoveResolver* resolver,
|
|
FpuRegister blocked)
|
|
: resolver_(resolver), reg_(kNoFpuRegister), spilled_(false) {
|
|
COMPILE_ASSERT(FpuTMP != kNoFpuRegister);
|
|
uword blocked_mask =
|
|
((blocked != kNoFpuRegister) ? 1 << blocked : 0) | 1 << FpuTMP;
|
|
reg_ = static_cast<FpuRegister>(resolver_->AllocateScratchRegister(
|
|
Location::kFpuRegister, blocked_mask, 0, kNumberOfFpuRegisters - 1,
|
|
&spilled_));
|
|
|
|
if (spilled_) {
|
|
resolver->SpillFpuScratch(reg_);
|
|
}
|
|
}
|
|
|
|
ParallelMoveResolver::ScratchFpuRegisterScope::~ScratchFpuRegisterScope() {
|
|
if (spilled_) {
|
|
resolver_->RestoreFpuScratch(reg_);
|
|
}
|
|
}
|
|
|
|
ParallelMoveResolver::TemporaryAllocator::TemporaryAllocator(
|
|
ParallelMoveResolver* resolver,
|
|
Register blocked)
|
|
: resolver_(resolver),
|
|
blocked_(blocked),
|
|
reg_(kNoRegister),
|
|
spilled_(false) {}
|
|
|
|
Register ParallelMoveResolver::TemporaryAllocator::AllocateTemporary() {
|
|
ASSERT(reg_ == kNoRegister);
|
|
|
|
uword blocked_mask = RegMaskBit(blocked_) | kReservedCpuRegisters;
|
|
if (resolver_->compiler_->intrinsic_mode()) {
|
|
// Block additional registers that must be preserved for intrinsics.
|
|
blocked_mask |= RegMaskBit(ARGS_DESC_REG);
|
|
#if !defined(TARGET_ARCH_IA32)
|
|
// Need to preserve CODE_REG to be able to store the PC marker
|
|
// and load the pool pointer.
|
|
blocked_mask |= RegMaskBit(CODE_REG);
|
|
#endif
|
|
}
|
|
reg_ = static_cast<Register>(
|
|
resolver_->AllocateScratchRegister(Location::kRegister, blocked_mask, 0,
|
|
kNumberOfCpuRegisters - 1, &spilled_));
|
|
|
|
if (spilled_) {
|
|
resolver_->SpillScratch(reg_);
|
|
}
|
|
|
|
DEBUG_ONLY(allocated_ = true;)
|
|
return reg_;
|
|
}
|
|
|
|
void ParallelMoveResolver::TemporaryAllocator::ReleaseTemporary() {
|
|
if (spilled_) {
|
|
resolver_->RestoreScratch(reg_);
|
|
}
|
|
reg_ = kNoRegister;
|
|
}
|
|
|
|
ParallelMoveResolver::ScratchRegisterScope::ScratchRegisterScope(
|
|
ParallelMoveResolver* resolver,
|
|
Register blocked)
|
|
: allocator_(resolver, blocked) {
|
|
reg_ = allocator_.AllocateTemporary();
|
|
}
|
|
|
|
ParallelMoveResolver::ScratchRegisterScope::~ScratchRegisterScope() {
|
|
allocator_.ReleaseTemporary();
|
|
}
|
|
|
|
const ICData* FlowGraphCompiler::GetOrAddInstanceCallICData(
|
|
intptr_t deopt_id,
|
|
const String& target_name,
|
|
const Array& arguments_descriptor,
|
|
intptr_t num_args_tested,
|
|
const AbstractType& receiver_type) {
|
|
if ((deopt_id_to_ic_data_ != NULL) &&
|
|
((*deopt_id_to_ic_data_)[deopt_id] != NULL)) {
|
|
const ICData* res = (*deopt_id_to_ic_data_)[deopt_id];
|
|
ASSERT(res->deopt_id() == deopt_id);
|
|
ASSERT(res->target_name() == target_name.raw());
|
|
ASSERT(res->NumArgsTested() == num_args_tested);
|
|
ASSERT(res->TypeArgsLen() ==
|
|
ArgumentsDescriptor(arguments_descriptor).TypeArgsLen());
|
|
ASSERT(!res->is_static_call());
|
|
ASSERT(res->receivers_static_type() == receiver_type.raw());
|
|
return res;
|
|
}
|
|
const ICData& ic_data = ICData::ZoneHandle(
|
|
zone(), ICData::New(parsed_function().function(), target_name,
|
|
arguments_descriptor, deopt_id, num_args_tested,
|
|
ICData::kInstance, receiver_type));
|
|
if (deopt_id_to_ic_data_ != NULL) {
|
|
(*deopt_id_to_ic_data_)[deopt_id] = &ic_data;
|
|
}
|
|
ASSERT(!ic_data.is_static_call());
|
|
return &ic_data;
|
|
}
|
|
|
|
const ICData* FlowGraphCompiler::GetOrAddStaticCallICData(
|
|
intptr_t deopt_id,
|
|
const Function& target,
|
|
const Array& arguments_descriptor,
|
|
intptr_t num_args_tested,
|
|
ICData::RebindRule rebind_rule) {
|
|
if ((deopt_id_to_ic_data_ != NULL) &&
|
|
((*deopt_id_to_ic_data_)[deopt_id] != NULL)) {
|
|
const ICData* res = (*deopt_id_to_ic_data_)[deopt_id];
|
|
ASSERT(res->deopt_id() == deopt_id);
|
|
ASSERT(res->target_name() == target.name());
|
|
ASSERT(res->NumArgsTested() == num_args_tested);
|
|
ASSERT(res->TypeArgsLen() ==
|
|
ArgumentsDescriptor(arguments_descriptor).TypeArgsLen());
|
|
ASSERT(res->is_static_call());
|
|
return res;
|
|
}
|
|
|
|
const ICData& ic_data = ICData::ZoneHandle(
|
|
zone(),
|
|
ICData::New(parsed_function().function(),
|
|
String::Handle(zone(), target.name()), arguments_descriptor,
|
|
deopt_id, num_args_tested, rebind_rule));
|
|
ic_data.AddTarget(target);
|
|
if (deopt_id_to_ic_data_ != NULL) {
|
|
(*deopt_id_to_ic_data_)[deopt_id] = &ic_data;
|
|
}
|
|
return &ic_data;
|
|
}
|
|
|
|
intptr_t FlowGraphCompiler::GetOptimizationThreshold() const {
|
|
intptr_t threshold;
|
|
if (is_optimizing()) {
|
|
threshold = FLAG_reoptimization_counter_threshold;
|
|
} else if (parsed_function_.function().IsIrregexpFunction()) {
|
|
threshold = FLAG_regexp_optimization_counter_threshold;
|
|
} else if (FLAG_randomize_optimization_counter) {
|
|
threshold = Thread::Current()->GetRandomUInt64() %
|
|
FLAG_optimization_counter_threshold;
|
|
} else {
|
|
const intptr_t basic_blocks = flow_graph().preorder().length();
|
|
ASSERT(basic_blocks > 0);
|
|
threshold = FLAG_optimization_counter_scale * basic_blocks +
|
|
FLAG_min_optimization_counter_threshold;
|
|
if (threshold > FLAG_optimization_counter_threshold) {
|
|
threshold = FLAG_optimization_counter_threshold;
|
|
}
|
|
}
|
|
|
|
// Threshold = 0 doesn't make sense because we increment the counter before
|
|
// testing against the threshold. Perhaps we could interpret it to mean
|
|
// "generate optimized code immediately without unoptimized compilation
|
|
// first", but this isn't supported in our pipeline because there would be no
|
|
// code for the optimized code to deoptimize into.
|
|
if (threshold == 0) threshold = 1;
|
|
|
|
// See Compiler::CanOptimizeFunction. In short, we have to allow the
|
|
// unoptimized code to run at least once to prevent an infinite compilation
|
|
// loop.
|
|
if (threshold == 1 && parsed_function().function().HasBreakpoint()) {
|
|
threshold = 2;
|
|
}
|
|
|
|
return threshold;
|
|
}
|
|
|
|
const Class& FlowGraphCompiler::BoxClassFor(Representation rep) {
|
|
switch (rep) {
|
|
case kUnboxedFloat:
|
|
case kUnboxedDouble:
|
|
return double_class();
|
|
case kUnboxedFloat32x4:
|
|
return float32x4_class();
|
|
case kUnboxedFloat64x2:
|
|
return float64x2_class();
|
|
case kUnboxedInt32x4:
|
|
return int32x4_class();
|
|
case kUnboxedInt64:
|
|
return mint_class();
|
|
default:
|
|
UNREACHABLE();
|
|
return Class::ZoneHandle();
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::BeginCodeSourceRange() {
|
|
code_source_map_builder_->BeginCodeSourceRange(assembler()->CodeSize());
|
|
}
|
|
|
|
void FlowGraphCompiler::EndCodeSourceRange(TokenPosition token_pos) {
|
|
code_source_map_builder_->EndCodeSourceRange(assembler()->CodeSize(),
|
|
token_pos);
|
|
}
|
|
|
|
const CallTargets* FlowGraphCompiler::ResolveCallTargetsForReceiverCid(
|
|
intptr_t cid,
|
|
const String& selector,
|
|
const Array& args_desc_array) {
|
|
Zone* zone = Thread::Current()->zone();
|
|
|
|
ArgumentsDescriptor args_desc(args_desc_array);
|
|
|
|
Function& fn = Function::ZoneHandle(zone);
|
|
if (!LookupMethodFor(cid, selector, args_desc, &fn)) return NULL;
|
|
|
|
CallTargets* targets = new (zone) CallTargets(zone);
|
|
targets->Add(new (zone) TargetInfo(cid, cid, &fn, /* count = */ 1,
|
|
StaticTypeExactnessState::NotTracking()));
|
|
|
|
return targets;
|
|
}
|
|
|
|
bool FlowGraphCompiler::LookupMethodFor(int class_id,
|
|
const String& name,
|
|
const ArgumentsDescriptor& args_desc,
|
|
Function* fn_return,
|
|
bool* class_is_abstract_return) {
|
|
Thread* thread = Thread::Current();
|
|
Isolate* isolate = thread->isolate();
|
|
Zone* zone = thread->zone();
|
|
if (class_id < 0) return false;
|
|
if (class_id >= isolate->class_table()->NumCids()) return false;
|
|
|
|
RawClass* raw_class = isolate->class_table()->At(class_id);
|
|
if (raw_class == NULL) return false;
|
|
Class& cls = Class::Handle(zone, raw_class);
|
|
if (cls.IsNull()) return false;
|
|
if (!cls.is_finalized()) return false;
|
|
if (Array::Handle(cls.functions()).IsNull()) return false;
|
|
|
|
if (class_is_abstract_return != NULL) {
|
|
*class_is_abstract_return = cls.is_abstract();
|
|
}
|
|
const bool allow_add = false;
|
|
Function& target_function =
|
|
Function::Handle(zone, Resolver::ResolveDynamicForReceiverClass(
|
|
cls, name, args_desc, allow_add));
|
|
if (target_function.IsNull()) return false;
|
|
*fn_return = target_function.raw();
|
|
return true;
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitPolymorphicInstanceCall(
|
|
const PolymorphicInstanceCallInstr* call,
|
|
const CallTargets& targets,
|
|
ArgumentsInfo args_info,
|
|
intptr_t deopt_id,
|
|
TokenPosition token_pos,
|
|
LocationSummary* locs,
|
|
bool complete,
|
|
intptr_t total_ic_calls,
|
|
bool receiver_can_be_smi) {
|
|
ASSERT(call != nullptr);
|
|
if (FLAG_polymorphic_with_deopt) {
|
|
compiler::Label* deopt =
|
|
AddDeoptStub(deopt_id, ICData::kDeoptPolymorphicInstanceCallTestFail);
|
|
compiler::Label ok;
|
|
EmitTestAndCall(targets, call->function_name(), args_info,
|
|
deopt, // No cid match.
|
|
&ok, // Found cid.
|
|
deopt_id, token_pos, locs, complete, total_ic_calls,
|
|
call->entry_kind());
|
|
assembler()->Bind(&ok);
|
|
} else {
|
|
if (complete) {
|
|
compiler::Label ok;
|
|
EmitTestAndCall(targets, call->function_name(), args_info,
|
|
NULL, // No cid match.
|
|
&ok, // Found cid.
|
|
deopt_id, token_pos, locs, true, total_ic_calls,
|
|
call->entry_kind());
|
|
assembler()->Bind(&ok);
|
|
} else {
|
|
const ICData& unary_checks =
|
|
ICData::ZoneHandle(zone(), call->ic_data()->AsUnaryClassChecks());
|
|
EmitInstanceCallAOT(unary_checks, deopt_id, token_pos, locs,
|
|
call->entry_kind(), receiver_can_be_smi);
|
|
}
|
|
}
|
|
}
|
|
|
|
#define __ assembler()->
|
|
void FlowGraphCompiler::EmitTestAndCall(const CallTargets& targets,
|
|
const String& function_name,
|
|
ArgumentsInfo args_info,
|
|
compiler::Label* failed,
|
|
compiler::Label* match_found,
|
|
intptr_t deopt_id,
|
|
TokenPosition token_index,
|
|
LocationSummary* locs,
|
|
bool complete,
|
|
intptr_t total_ic_calls,
|
|
Code::EntryKind entry_kind) {
|
|
ASSERT(is_optimizing());
|
|
ASSERT(complete || (failed != nullptr)); // Complete calls can't fail.
|
|
|
|
const Array& arguments_descriptor =
|
|
Array::ZoneHandle(zone(), args_info.ToArgumentsDescriptor());
|
|
EmitTestAndCallLoadReceiver(args_info.count_without_type_args,
|
|
arguments_descriptor);
|
|
|
|
static const int kNoCase = -1;
|
|
int smi_case = kNoCase;
|
|
int which_case_to_skip = kNoCase;
|
|
|
|
const int length = targets.length();
|
|
ASSERT(length > 0);
|
|
int non_smi_length = length;
|
|
|
|
// Find out if one of the classes in one of the cases is the Smi class. We
|
|
// will be handling that specially.
|
|
for (int i = 0; i < length; i++) {
|
|
const intptr_t start = targets[i].cid_start;
|
|
if (start > kSmiCid) continue;
|
|
const intptr_t end = targets[i].cid_end;
|
|
if (end >= kSmiCid) {
|
|
smi_case = i;
|
|
if (start == kSmiCid && end == kSmiCid) {
|
|
// If this case has only the Smi class then we won't need to emit it at
|
|
// all later.
|
|
which_case_to_skip = i;
|
|
non_smi_length--;
|
|
}
|
|
break;
|
|
}
|
|
}
|
|
|
|
if (smi_case != kNoCase) {
|
|
compiler::Label after_smi_test;
|
|
// If the call is complete and there are no other possible receiver
|
|
// classes - then receiver can only be a smi value and we don't need
|
|
// to check if it is a smi.
|
|
if (!(complete && non_smi_length == 0)) {
|
|
EmitTestAndCallSmiBranch(non_smi_length == 0 ? failed : &after_smi_test,
|
|
/* jump_if_smi= */ false);
|
|
}
|
|
|
|
// 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.
|
|
const Function& function = *targets.TargetAt(smi_case)->target;
|
|
GenerateStaticDartCall(deopt_id, token_index, RawPcDescriptors::kOther,
|
|
locs, function, entry_kind);
|
|
__ Drop(args_info.size_with_type_args);
|
|
if (match_found != NULL) {
|
|
__ Jump(match_found);
|
|
}
|
|
__ Bind(&after_smi_test);
|
|
} else {
|
|
if (!complete) {
|
|
// Smi is not a valid class.
|
|
EmitTestAndCallSmiBranch(failed, /* jump_if_smi = */ true);
|
|
}
|
|
}
|
|
|
|
if (non_smi_length == 0) {
|
|
// If non_smi_length is 0 then only a Smi check was needed; the Smi check
|
|
// above will fail if there was only one check and receiver is not Smi.
|
|
return;
|
|
}
|
|
|
|
bool add_megamorphic_call = false;
|
|
int bias = 0;
|
|
|
|
// Value is not Smi.
|
|
EmitTestAndCallLoadCid(EmitTestCidRegister());
|
|
|
|
int last_check = which_case_to_skip == length - 1 ? length - 2 : length - 1;
|
|
|
|
for (intptr_t i = 0; i < length; i++) {
|
|
if (i == which_case_to_skip) continue;
|
|
const bool is_last_check = (i == last_check);
|
|
const int count = targets.TargetAt(i)->count;
|
|
if (!is_last_check && !complete && count < (total_ic_calls >> 5)) {
|
|
// This case is hit too rarely to be worth writing class-id checks inline
|
|
// for. Note that we can't do this for calls with only one target because
|
|
// the type propagator may have made use of that and expects a deopt if
|
|
// a new class is seen at this calls site. See IsMonomorphic.
|
|
add_megamorphic_call = true;
|
|
break;
|
|
}
|
|
compiler::Label next_test;
|
|
if (!complete || !is_last_check) {
|
|
bias = EmitTestAndCallCheckCid(assembler(),
|
|
is_last_check ? failed : &next_test,
|
|
EmitTestCidRegister(), targets[i], bias,
|
|
/*jump_on_miss =*/true);
|
|
}
|
|
// 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.
|
|
const Function& function = *targets.TargetAt(i)->target;
|
|
GenerateStaticDartCall(deopt_id, token_index, RawPcDescriptors::kOther,
|
|
locs, function, entry_kind);
|
|
__ Drop(args_info.size_with_type_args);
|
|
if (!is_last_check || add_megamorphic_call) {
|
|
__ Jump(match_found);
|
|
}
|
|
__ Bind(&next_test);
|
|
}
|
|
if (add_megamorphic_call) {
|
|
int try_index = kInvalidTryIndex;
|
|
EmitMegamorphicInstanceCall(function_name, arguments_descriptor, deopt_id,
|
|
token_index, locs, try_index);
|
|
}
|
|
}
|
|
|
|
bool FlowGraphCompiler::GenerateSubtypeRangeCheck(Register class_id_reg,
|
|
const Class& type_class,
|
|
compiler::Label* is_subtype) {
|
|
HierarchyInfo* hi = Thread::Current()->hierarchy_info();
|
|
if (hi != NULL) {
|
|
const CidRangeVector& ranges =
|
|
hi->SubtypeRangesForClass(type_class,
|
|
/*include_abstract=*/false,
|
|
/*exclude_null=*/false);
|
|
if (ranges.length() <= kMaxNumberOfCidRangesToTest) {
|
|
GenerateCidRangesCheck(assembler(), class_id_reg, ranges, is_subtype);
|
|
return true;
|
|
}
|
|
}
|
|
|
|
// We don't have cid-ranges for subclasses, so we'll just test against the
|
|
// class directly if it's non-abstract.
|
|
if (!type_class.is_abstract()) {
|
|
__ CompareImmediate(class_id_reg, type_class.id());
|
|
__ BranchIf(EQUAL, is_subtype);
|
|
}
|
|
return false;
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateCidRangesCheck(
|
|
compiler::Assembler* assembler,
|
|
Register class_id_reg,
|
|
const CidRangeVector& cid_ranges,
|
|
compiler::Label* inside_range_lbl,
|
|
compiler::Label* outside_range_lbl,
|
|
bool fall_through_if_inside) {
|
|
// If there are no valid class ranges, the check will fail. If we are
|
|
// supposed to fall-through in the positive case, we'll explicitly jump to
|
|
// the [outside_range_lbl].
|
|
if (cid_ranges.length() == 1 && cid_ranges[0].IsIllegalRange()) {
|
|
if (fall_through_if_inside) {
|
|
assembler->Jump(outside_range_lbl);
|
|
}
|
|
return;
|
|
}
|
|
|
|
int bias = 0;
|
|
for (intptr_t i = 0; i < cid_ranges.length(); ++i) {
|
|
const CidRangeValue& range = cid_ranges[i];
|
|
RELEASE_ASSERT(!range.IsIllegalRange());
|
|
const bool last_round = i == (cid_ranges.length() - 1);
|
|
|
|
compiler::Label* jump_label = last_round && fall_through_if_inside
|
|
? outside_range_lbl
|
|
: inside_range_lbl;
|
|
const bool jump_on_miss = last_round && fall_through_if_inside;
|
|
|
|
bias = EmitTestAndCallCheckCid(assembler, jump_label, class_id_reg, range,
|
|
bias, jump_on_miss);
|
|
}
|
|
}
|
|
|
|
bool FlowGraphCompiler::ShouldUseTypeTestingStubFor(bool optimizing,
|
|
const AbstractType& type) {
|
|
return FLAG_precompiled_mode ||
|
|
(optimizing &&
|
|
(type.IsTypeParameter() || (type.IsType() && type.IsInstantiated())));
|
|
}
|
|
|
|
FlowGraphCompiler::TypeTestStubKind
|
|
FlowGraphCompiler::GetTypeTestStubKindForTypeParameter(
|
|
const TypeParameter& type_param) {
|
|
// If it's guaranteed, by type-parameter bound, that the type parameter will
|
|
// never have a value of a function type, then we can safely do a 4-type
|
|
// test instead of a 6-type test.
|
|
AbstractType& bound = AbstractType::Handle(zone(), type_param.bound());
|
|
bound = bound.UnwrapFutureOr();
|
|
return !bound.IsTopType() && !bound.IsObjectType() &&
|
|
!bound.IsFunctionType() && !bound.IsDartFunctionType() &&
|
|
bound.IsType()
|
|
? kTestTypeFourArgs
|
|
: kTestTypeSixArgs;
|
|
}
|
|
|
|
void FlowGraphCompiler::GenerateAssertAssignableViaTypeTestingStub(
|
|
const AbstractType& dst_type,
|
|
const String& dst_name,
|
|
const Register instance_reg,
|
|
const Register instantiator_type_args_reg,
|
|
const Register function_type_args_reg,
|
|
const Register subtype_cache_reg,
|
|
const Register dst_type_reg,
|
|
const Register dst_type_reg_to_call,
|
|
const Register scratch_reg,
|
|
compiler::Label* done) {
|
|
TypeUsageInfo* type_usage_info = thread()->type_usage_info();
|
|
|
|
// If the int type is assignable to [dst_type] we special case it on the
|
|
// caller side!
|
|
const Type& int_type = Type::Handle(zone(), Type::IntType());
|
|
bool is_non_smi = false;
|
|
if (int_type.IsSubtypeOf(dst_type, Heap::kOld)) {
|
|
__ BranchIfSmi(instance_reg, done);
|
|
is_non_smi = true;
|
|
}
|
|
|
|
// We use two type registers iff the dst type is a type parameter.
|
|
// We "dereference" the type parameter for the TTS call but leave the type
|
|
// parameter in the dst_type_reg for fallback into SubtypeTestCache.
|
|
ASSERT(dst_type.IsTypeParameter() == (dst_type_reg != dst_type_reg_to_call));
|
|
|
|
// We can handle certain types very efficiently on the call site (with a
|
|
// bailout to the normal stub, which will do a runtime call).
|
|
if (dst_type.IsTypeParameter()) {
|
|
// In NNBD strong mode we need to handle null instance before calling TTS
|
|
// if type parameter is nullable or legacy because type parameter can be
|
|
// instantiated with a non-nullable type which rejects null.
|
|
// In NNBD weak mode or if type parameter is non-nullable or has
|
|
// undetermined nullability null instance is correctly handled by TTS.
|
|
if (FLAG_null_safety && (dst_type.IsNullable() || dst_type.IsLegacy())) {
|
|
__ CompareObject(instance_reg, Object::null_object());
|
|
__ BranchIf(EQUAL, done);
|
|
}
|
|
const TypeParameter& type_param = TypeParameter::Cast(dst_type);
|
|
const Register kTypeArgumentsReg = type_param.IsClassTypeParameter()
|
|
? instantiator_type_args_reg
|
|
: function_type_args_reg;
|
|
|
|
// Check if type arguments are null, i.e. equivalent to vector of dynamic.
|
|
__ CompareObject(kTypeArgumentsReg, Object::null_object());
|
|
__ BranchIf(EQUAL, done);
|
|
__ LoadField(
|
|
dst_type_reg_to_call,
|
|
compiler::FieldAddress(kTypeArgumentsReg,
|
|
compiler::target::TypeArguments::type_at_offset(
|
|
type_param.index())));
|
|
__ LoadObject(dst_type_reg, type_param);
|
|
if (type_usage_info != NULL) {
|
|
type_usage_info->UseTypeInAssertAssignable(dst_type);
|
|
}
|
|
} else {
|
|
HierarchyInfo* hi = Thread::Current()->hierarchy_info();
|
|
if (hi != NULL) {
|
|
const Class& type_class = Class::Handle(zone(), dst_type.type_class());
|
|
|
|
bool check_handled_at_callsite = false;
|
|
bool used_cid_range_check = false;
|
|
const bool can_use_simple_cid_range_test =
|
|
hi->CanUseSubtypeRangeCheckFor(dst_type);
|
|
if (can_use_simple_cid_range_test) {
|
|
const CidRangeVector& ranges = hi->SubtypeRangesForClass(
|
|
type_class,
|
|
/*include_abstract=*/false,
|
|
/*exclude_null=*/!Instance::NullIsAssignableTo(dst_type));
|
|
if (ranges.length() <= kMaxNumberOfCidRangesToTest) {
|
|
if (is_non_smi) {
|
|
__ LoadClassId(scratch_reg, instance_reg);
|
|
} else {
|
|
__ LoadClassIdMayBeSmi(scratch_reg, instance_reg);
|
|
}
|
|
GenerateCidRangesCheck(assembler(), scratch_reg, ranges, done);
|
|
used_cid_range_check = true;
|
|
check_handled_at_callsite = true;
|
|
}
|
|
}
|
|
|
|
if (!used_cid_range_check && can_use_simple_cid_range_test &&
|
|
IsListClass(type_class)) {
|
|
__ LoadClassIdMayBeSmi(scratch_reg, instance_reg);
|
|
GenerateListTypeCheck(scratch_reg, done);
|
|
used_cid_range_check = true;
|
|
}
|
|
|
|
// If we haven't handled the positive case of the type check on the
|
|
// call-site, we want an optimized type testing stub and therefore record
|
|
// it in the [TypeUsageInfo].
|
|
if (!check_handled_at_callsite) {
|
|
if (type_usage_info != NULL) {
|
|
type_usage_info->UseTypeInAssertAssignable(dst_type);
|
|
} else {
|
|
ASSERT(!FLAG_precompiled_mode);
|
|
}
|
|
}
|
|
}
|
|
__ LoadObject(dst_type_reg, dst_type);
|
|
}
|
|
}
|
|
|
|
#undef __
|
|
|
|
#if defined(DEBUG)
|
|
void FlowGraphCompiler::FrameStateUpdateWith(Instruction* instr) {
|
|
ASSERT(!is_optimizing());
|
|
|
|
switch (instr->tag()) {
|
|
case Instruction::kPushArgument:
|
|
// Do nothing.
|
|
break;
|
|
|
|
case Instruction::kDropTemps:
|
|
FrameStatePop(instr->locs()->input_count() +
|
|
instr->AsDropTemps()->num_temps());
|
|
break;
|
|
|
|
default:
|
|
FrameStatePop(instr->locs()->input_count());
|
|
break;
|
|
}
|
|
|
|
ASSERT(!instr->locs()->can_call() || FrameStateIsSafeToCall());
|
|
|
|
FrameStatePop(instr->ArgumentCount());
|
|
Definition* defn = instr->AsDefinition();
|
|
if ((defn != NULL) && defn->HasTemp()) {
|
|
FrameStatePush(defn);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::FrameStatePush(Definition* defn) {
|
|
Representation rep = defn->representation();
|
|
if ((rep == kUnboxedDouble) || (rep == kUnboxedFloat64x2) ||
|
|
(rep == kUnboxedFloat32x4)) {
|
|
// LoadField instruction lies about its representation in the unoptimized
|
|
// code because Definition::representation() can't depend on the type of
|
|
// compilation but MakeLocationSummary and EmitNativeCode can.
|
|
ASSERT(defn->IsLoadField() && defn->AsLoadField()->IsUnboxedLoad());
|
|
ASSERT(defn->locs()->out(0).IsRegister());
|
|
rep = kTagged;
|
|
}
|
|
ASSERT(!is_optimizing());
|
|
ASSERT((rep == kTagged) || (rep == kUntagged));
|
|
ASSERT(rep != kUntagged || flow_graph_.IsIrregexpFunction());
|
|
frame_state_.Add(rep);
|
|
}
|
|
|
|
void FlowGraphCompiler::FrameStatePop(intptr_t count) {
|
|
ASSERT(!is_optimizing());
|
|
frame_state_.TruncateTo(
|
|
Utils::Maximum(static_cast<intptr_t>(0), frame_state_.length() - count));
|
|
}
|
|
|
|
bool FlowGraphCompiler::FrameStateIsSafeToCall() {
|
|
ASSERT(!is_optimizing());
|
|
for (intptr_t i = 0; i < frame_state_.length(); i++) {
|
|
if (frame_state_[i] != kTagged) {
|
|
return false;
|
|
}
|
|
}
|
|
return true;
|
|
}
|
|
|
|
void FlowGraphCompiler::FrameStateClear() {
|
|
ASSERT(!is_optimizing());
|
|
frame_state_.TruncateTo(0);
|
|
}
|
|
#endif // defined(DEBUG)
|
|
|
|
#define __ compiler->assembler()->
|
|
|
|
void ThrowErrorSlowPathCode::EmitNativeCode(FlowGraphCompiler* compiler) {
|
|
if (compiler::Assembler::EmittingComments()) {
|
|
__ Comment("slow path %s operation", name());
|
|
}
|
|
const bool use_shared_stub =
|
|
instruction()->UseSharedSlowPathStub(compiler->is_optimizing());
|
|
const bool live_fpu_registers =
|
|
instruction()->locs()->live_registers()->FpuRegisterCount() > 0;
|
|
ASSERT(!use_shared_stub || num_args_ == 0);
|
|
__ Bind(entry_label());
|
|
EmitCodeAtSlowPathEntry(compiler);
|
|
LocationSummary* locs = instruction()->locs();
|
|
// Save registers as they are needed for lazy deopt / exception handling.
|
|
if (!use_shared_stub) {
|
|
compiler->SaveLiveRegisters(locs);
|
|
}
|
|
intptr_t i = 0;
|
|
if (num_args_ % 2 != 0) {
|
|
__ PushRegister(locs->in(i).reg());
|
|
++i;
|
|
}
|
|
for (; i < num_args_; i += 2) {
|
|
__ PushRegisterPair(locs->in(i + 1).reg(), locs->in(i).reg());
|
|
}
|
|
if (use_shared_stub) {
|
|
EmitSharedStubCall(compiler, live_fpu_registers);
|
|
} else {
|
|
__ CallRuntime(runtime_entry_, num_args_);
|
|
}
|
|
const intptr_t deopt_id = instruction()->deopt_id();
|
|
compiler->AddDescriptor(RawPcDescriptors::kOther,
|
|
compiler->assembler()->CodeSize(), deopt_id,
|
|
instruction()->token_pos(), try_index_);
|
|
AddMetadataForRuntimeCall(compiler);
|
|
compiler->RecordSafepoint(locs, num_args_);
|
|
if ((try_index_ != kInvalidTryIndex) ||
|
|
(compiler->CurrentTryIndex() != kInvalidTryIndex)) {
|
|
Environment* env =
|
|
compiler->SlowPathEnvironmentFor(instruction(), num_args_);
|
|
if (FLAG_precompiled_mode) {
|
|
compiler->RecordCatchEntryMoves(env, try_index_);
|
|
} else if (env != nullptr) {
|
|
compiler->AddSlowPathDeoptInfo(deopt_id, env);
|
|
}
|
|
}
|
|
if (!use_shared_stub) {
|
|
__ Breakpoint();
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitNativeMove(
|
|
const compiler::ffi::NativeLocation& destination,
|
|
const compiler::ffi::NativeLocation& source,
|
|
TemporaryRegisterAllocator* temp) {
|
|
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();
|
|
const intptr_t src_payload_size = src_payload_type.SizeInBytes();
|
|
const intptr_t dst_payload_size = dst_payload_type.SizeInBytes();
|
|
const intptr_t src_container_size = src_container_type.SizeInBytes();
|
|
const intptr_t dst_container_size = dst_container_type.SizeInBytes();
|
|
|
|
// This function does not know how to do larger mem copy moves yet.
|
|
ASSERT(src_payload_type.IsFundamental());
|
|
ASSERT(dst_payload_type.IsFundamental());
|
|
|
|
// This function does not deal with sign conversions yet.
|
|
ASSERT(src_payload_type.IsSigned() == dst_payload_type.IsSigned());
|
|
|
|
// This function does not deal with bit casts yet.
|
|
ASSERT(src_container_type.IsFloat() == dst_container_type.IsFloat());
|
|
ASSERT(src_container_type.IsInt() == dst_container_type.IsInt());
|
|
|
|
// If the location, payload, and container are equal, we're done.
|
|
if (source.Equals(destination) && src_payload_type.Equals(dst_payload_type) &&
|
|
src_container_type.Equals(dst_container_type)) {
|
|
return;
|
|
}
|
|
|
|
// Solve descrepancies between container size and payload size.
|
|
if (src_payload_type.IsInt() && dst_payload_type.IsInt() &&
|
|
(src_payload_size != src_container_size ||
|
|
dst_payload_size != dst_container_size)) {
|
|
if (src_payload_size <= dst_payload_size &&
|
|
src_container_size >= dst_container_size) {
|
|
// The upper bits of the source are already properly sign or zero
|
|
// extended, so just copy the required amount of bits.
|
|
return EmitNativeMove(destination.WithOtherNativeType(
|
|
dst_container_type, dst_container_type, zone_),
|
|
source.WithOtherNativeType(
|
|
dst_container_type, dst_container_type, zone_),
|
|
temp);
|
|
}
|
|
if (src_payload_size >= dst_payload_size &&
|
|
dst_container_size > dst_payload_size) {
|
|
// The upper bits of the source are not properly sign or zero extended
|
|
// to be copied to the target, so regard the source as smaller.
|
|
return EmitNativeMove(
|
|
destination.WithOtherNativeType(dst_container_type,
|
|
dst_container_type, zone_),
|
|
source.WithOtherNativeType(dst_payload_type, dst_payload_type, zone_),
|
|
temp);
|
|
}
|
|
UNREACHABLE();
|
|
}
|
|
ASSERT(src_payload_size == src_container_size);
|
|
ASSERT(dst_payload_size == dst_container_size);
|
|
|
|
// Split moves that are larger than kWordSize, these require separate
|
|
// instructions on all architectures.
|
|
if (compiler::target::kWordSize == 4 && src_container_size == 8 &&
|
|
dst_container_size == 8 && !source.IsFpuRegisters() &&
|
|
!destination.IsFpuRegisters()) {
|
|
// TODO(40209): If this is stack to stack, we could use FpuTMP.
|
|
// Test the impact on code size and speed.
|
|
EmitNativeMove(destination.Split(0, zone_), source.Split(0, zone_), temp);
|
|
EmitNativeMove(destination.Split(1, zone_), source.Split(1, zone_), temp);
|
|
return;
|
|
}
|
|
|
|
// Split moves from stack to stack, none of the architectures provides
|
|
// memory to memory move instructions.
|
|
if (source.IsStack() && destination.IsStack()) {
|
|
Register scratch = TMP;
|
|
if (TMP == kNoRegister) {
|
|
scratch = temp->AllocateTemporary();
|
|
}
|
|
const auto& intermediate =
|
|
*new (zone_) compiler::ffi::NativeRegistersLocation(
|
|
dst_payload_type, dst_container_type, scratch);
|
|
EmitNativeMove(intermediate, source, temp);
|
|
EmitNativeMove(destination, intermediate, temp);
|
|
if (TMP == kNoRegister) {
|
|
temp->ReleaseTemporary();
|
|
}
|
|
return;
|
|
}
|
|
|
|
const bool sign_or_zero_extend = dst_container_size > src_container_size;
|
|
|
|
// No architecture supports sign extending with memory as destination.
|
|
if (sign_or_zero_extend && destination.IsStack()) {
|
|
ASSERT(source.IsRegisters());
|
|
const auto& intermediate =
|
|
source.WithOtherNativeType(dst_payload_type, dst_container_type, zone_);
|
|
EmitNativeMove(intermediate, source, temp);
|
|
EmitNativeMove(destination, intermediate, temp);
|
|
return;
|
|
}
|
|
|
|
#if defined(TARGET_ARCH_ARM) || defined(TARGET_ARCH_ARM64)
|
|
// Arm does not support sign extending from a memory location, x86 does.
|
|
if (sign_or_zero_extend && source.IsStack()) {
|
|
ASSERT(destination.IsRegisters());
|
|
const auto& intermediate = destination.WithOtherNativeType(
|
|
src_payload_type, src_container_type, zone_);
|
|
EmitNativeMove(intermediate, source, temp);
|
|
EmitNativeMove(destination, intermediate, temp);
|
|
return;
|
|
}
|
|
#endif
|
|
|
|
// If we're not sign extending, and we're moving 8 or 16 bits into a
|
|
// register, upgrade the move to take upper bits of garbage from the
|
|
// source location. This is the same as leaving the previous garbage in
|
|
// there.
|
|
//
|
|
// TODO(40210): If our assemblers would support moving 1 and 2 bytes into
|
|
// registers, this code can be removed.
|
|
if (!sign_or_zero_extend && destination.IsRegisters() &&
|
|
destination.container_type().SizeInBytes() <= 2) {
|
|
ASSERT(source.payload_type().IsInt());
|
|
return EmitNativeMove(destination.WidenTo4Bytes(zone_),
|
|
source.WidenTo4Bytes(zone_), temp);
|
|
}
|
|
|
|
// Do the simple architecture specific moves.
|
|
EmitNativeMoveArchitecture(destination, source);
|
|
}
|
|
|
|
// TODO(dartbug.com/36730): Remove this if PairLocations can be converted
|
|
// into NativeLocations.
|
|
void FlowGraphCompiler::EmitMoveToNative(
|
|
const compiler::ffi::NativeLocation& dst,
|
|
Location src_loc,
|
|
Representation src_type,
|
|
TemporaryRegisterAllocator* temp) {
|
|
if (src_loc.IsPairLocation()) {
|
|
for (intptr_t i : {0, 1}) {
|
|
const auto& src_split = compiler::ffi::NativeLocation::FromPairLocation(
|
|
src_loc, src_type, i, zone_);
|
|
EmitNativeMove(dst.Split(i, zone_), src_split, temp);
|
|
}
|
|
} else {
|
|
const auto& src =
|
|
compiler::ffi::NativeLocation::FromLocation(src_loc, src_type, zone_);
|
|
EmitNativeMove(dst, src, temp);
|
|
}
|
|
}
|
|
|
|
// TODO(dartbug.com/36730): Remove this if PairLocations can be converted
|
|
// into NativeLocations.
|
|
void FlowGraphCompiler::EmitMoveFromNative(
|
|
Location dst_loc,
|
|
Representation dst_type,
|
|
const compiler::ffi::NativeLocation& src,
|
|
TemporaryRegisterAllocator* temp) {
|
|
if (dst_loc.IsPairLocation()) {
|
|
for (intptr_t i : {0, 1}) {
|
|
const auto& dest_split = compiler::ffi::NativeLocation::FromPairLocation(
|
|
dst_loc, dst_type, i, zone_);
|
|
EmitNativeMove(dest_split, src.Split(i, zone_), temp);
|
|
}
|
|
} else {
|
|
const auto& dest =
|
|
compiler::ffi::NativeLocation::FromLocation(dst_loc, dst_type, zone_);
|
|
EmitNativeMove(dest, src, temp);
|
|
}
|
|
}
|
|
|
|
void FlowGraphCompiler::EmitMoveConst(const compiler::ffi::NativeLocation& dst,
|
|
Location src,
|
|
Representation src_type,
|
|
TemporaryRegisterAllocator* temp) {
|
|
ASSERT(src.IsConstant());
|
|
const auto& dst_type = dst.payload_type();
|
|
if (dst.IsExpressibleAsLocation() &&
|
|
dst_type.IsExpressibleAsRepresentation() &&
|
|
dst_type.AsRepresentationOverApprox(zone_) == src_type) {
|
|
// We can directly emit the const in the right place and representation.
|
|
const Location dst_loc = dst.AsLocation();
|
|
EmitMove(dst_loc, src, temp);
|
|
} else {
|
|
// We need an intermediate location.
|
|
Location intermediate;
|
|
if (dst_type.IsInt()) {
|
|
if (TMP == kNoRegister) {
|
|
Register scratch = temp->AllocateTemporary();
|
|
Location::RegisterLocation(scratch);
|
|
} else {
|
|
intermediate = Location::RegisterLocation(TMP);
|
|
}
|
|
} else {
|
|
ASSERT(dst_type.IsFloat());
|
|
intermediate = Location::FpuRegisterLocation(FpuTMP);
|
|
}
|
|
|
|
if (src.IsPairLocation()) {
|
|
for (intptr_t i : {0, 1}) {
|
|
const Representation src_type_split =
|
|
compiler::ffi::NativeType::FromUnboxedRepresentation(src_type,
|
|
zone_)
|
|
.Split(i, zone_)
|
|
.AsRepresentation();
|
|
const auto& intermediate_native =
|
|
compiler::ffi::NativeLocation::FromLocation(intermediate,
|
|
src_type_split, zone_);
|
|
EmitMove(intermediate, src.AsPairLocation()->At(i), temp);
|
|
EmitNativeMove(dst.Split(i, zone_), intermediate_native, temp);
|
|
}
|
|
} else {
|
|
const auto& intermediate_native =
|
|
compiler::ffi::NativeLocation::FromLocation(intermediate, src_type,
|
|
zone_);
|
|
EmitMove(intermediate, src, temp);
|
|
EmitNativeMove(dst, intermediate_native, temp);
|
|
}
|
|
|
|
if (dst_type.IsInt() && TMP == kNoRegister) {
|
|
temp->ReleaseTemporary();
|
|
}
|
|
}
|
|
return;
|
|
}
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#undef __
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#endif // !defined(DART_PRECOMPILED_RUNTIME)
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} // namespace dart
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