ab3cbf5796
Change the common subexpression elimination, loop-invariant code motion, and range analysis passes to maintain use lists. git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@18209 260f80e4-7a28-3924-810f-c04153c831b5
802 lines
28 KiB
C++
802 lines
28 KiB
C++
// Copyright (c) 2012, 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/flow_graph.h"
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#include "vm/bit_vector.h"
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#include "vm/flow_graph_builder.h"
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#include "vm/intermediate_language.h"
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#include "vm/longjump.h"
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#include "vm/growable_array.h"
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namespace dart {
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DECLARE_FLAG(bool, trace_optimization);
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DECLARE_FLAG(bool, verify_compiler);
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FlowGraph::FlowGraph(const FlowGraphBuilder& builder,
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GraphEntryInstr* graph_entry,
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intptr_t max_block_id)
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: parent_(),
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assigned_vars_(),
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current_ssa_temp_index_(0),
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max_block_id_(max_block_id),
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parsed_function_(builder.parsed_function()),
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num_copied_params_(builder.num_copied_params()),
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num_non_copied_params_(builder.num_non_copied_params()),
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num_stack_locals_(builder.num_stack_locals()),
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graph_entry_(graph_entry),
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preorder_(),
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postorder_(),
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reverse_postorder_(),
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invalid_dominator_tree_(true) {
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DiscoverBlocks();
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}
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ConstantInstr* FlowGraph::AddConstantToInitialDefinitions(
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const Object& object) {
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// Check if the constant is already in the pool.
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for (intptr_t i = 0; i < graph_entry_->initial_definitions()->length(); ++i) {
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ConstantInstr* constant =
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(*graph_entry_->initial_definitions())[i]->AsConstant();
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if ((constant != NULL) && (constant->value().raw() == object.raw())) {
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return constant;
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}
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}
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// Otherwise, allocate and add it to the pool.
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ConstantInstr* constant = new ConstantInstr(object);
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constant->set_ssa_temp_index(alloc_ssa_temp_index());
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AddToInitialDefinitions(constant);
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return constant;
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}
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void FlowGraph::AddToInitialDefinitions(Definition* defn) {
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// TODO(zerny): Set previous to the graph entry so it is accessible by
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// GetBlock. Remove this once there is a direct pointer to the block.
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defn->set_previous(graph_entry_);
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graph_entry_->initial_definitions()->Add(defn);
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}
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void FlowGraph::DiscoverBlocks() {
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// Initialize state.
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preorder_.Clear();
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postorder_.Clear();
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reverse_postorder_.Clear();
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parent_.Clear();
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assigned_vars_.Clear();
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// Perform a depth-first traversal of the graph to build preorder and
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// postorder block orders.
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graph_entry_->DiscoverBlocks(NULL, // Entry block predecessor.
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&preorder_,
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&postorder_,
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&parent_,
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&assigned_vars_,
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variable_count(),
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num_non_copied_params());
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// Create an array of blocks in reverse postorder.
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intptr_t block_count = postorder_.length();
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for (intptr_t i = 0; i < block_count; ++i) {
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reverse_postorder_.Add(postorder_[block_count - i - 1]);
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}
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}
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#ifdef DEBUG
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// Debugging code to verify the construction of use lists.
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static intptr_t MembershipCount(Value* use, Value* list) {
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intptr_t count = 0;
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while (list != NULL) {
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if (list == use) ++count;
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list = list->next_use();
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}
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return count;
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}
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static void ResetUseListsInInstruction(Instruction* instr) {
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Definition* defn = instr->AsDefinition();
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if (defn != NULL) {
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defn->set_input_use_list(NULL);
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defn->set_env_use_list(NULL);
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}
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for (intptr_t i = 0; i < instr->InputCount(); ++i) {
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Value* use = instr->InputAt(i);
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use->set_instruction(NULL);
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use->set_use_index(-1);
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use->set_previous_use(NULL);
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use->set_next_use(NULL);
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}
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for (Environment::DeepIterator it(instr->env()); !it.Done(); it.Advance()) {
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Value* use = it.CurrentValue();
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use->set_instruction(NULL);
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use->set_use_index(-1);
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use->set_previous_use(NULL);
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use->set_next_use(NULL);
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}
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}
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bool FlowGraph::ResetUseLists() {
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// Reset initial definitions.
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for (intptr_t i = 0; i < graph_entry_->initial_definitions()->length(); ++i) {
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ResetUseListsInInstruction((*graph_entry_->initial_definitions())[i]);
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}
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// Reset phis in join entries and the instructions in each block.
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for (intptr_t i = 0; i < preorder_.length(); ++i) {
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BlockEntryInstr* entry = preorder_[i];
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JoinEntryInstr* join = entry->AsJoinEntry();
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if (join != NULL && join->phis() != NULL) {
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for (intptr_t i = 0; i < join->phis()->length(); ++i) {
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PhiInstr* phi = (*join->phis())[i];
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if (phi != NULL) ResetUseListsInInstruction(phi);
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}
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}
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for (ForwardInstructionIterator it(entry); !it.Done(); it.Advance()) {
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ResetUseListsInInstruction(it.Current());
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}
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}
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return true; // Return true so we can ASSERT the reset code.
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}
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static void ValidateUseListsInInstruction(Instruction* instr) {
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ASSERT(instr != NULL);
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ASSERT(!instr->IsJoinEntry());
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for (intptr_t i = 0; i < instr->InputCount(); ++i) {
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Value* use = instr->InputAt(i);
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ASSERT(use->use_index() == i);
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ASSERT(!FLAG_verify_compiler ||
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(1 == MembershipCount(use, use->definition()->input_use_list())));
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}
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if (instr->env() != NULL) {
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intptr_t use_index = 0;
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for (Environment::DeepIterator it(instr->env()); !it.Done(); it.Advance()) {
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Value* use = it.CurrentValue();
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ASSERT(use->use_index() == use_index++);
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ASSERT(!FLAG_verify_compiler ||
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(1 == MembershipCount(use, use->definition()->env_use_list())));
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}
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}
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Definition* defn = instr->AsDefinition();
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if (defn != NULL) {
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Value* prev = NULL;
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Value* curr = defn->input_use_list();
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while (curr != NULL) {
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ASSERT(prev == curr->previous_use());
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ASSERT(defn == curr->definition());
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Instruction* instr = curr->instruction();
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// The instruction should not be removed from the graph (phis are not
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// removed until register allocation.)
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ASSERT(instr->IsPhi() || (instr->previous() != NULL));
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ASSERT(curr == instr->InputAt(curr->use_index()));
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prev = curr;
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curr = curr->next_use();
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}
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prev = NULL;
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curr = defn->env_use_list();
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while (curr != NULL) {
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ASSERT(prev == curr->previous_use());
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ASSERT(defn == curr->definition());
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Instruction* instr = curr->instruction();
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ASSERT(curr == instr->env()->ValueAtUseIndex(curr->use_index()));
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// The instruction should not be removed from the graph (phis are not
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// removed until register allocation.)
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ASSERT(instr->IsPhi() || (instr->previous() != NULL));
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prev = curr;
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curr = curr->next_use();
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}
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}
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}
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bool FlowGraph::ValidateUseLists() {
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// Validate initial definitions.
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for (intptr_t i = 0; i < graph_entry_->initial_definitions()->length(); ++i) {
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ValidateUseListsInInstruction((*graph_entry_->initial_definitions())[i]);
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}
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// Validate phis in join entries and the instructions in each block.
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for (intptr_t i = 0; i < preorder_.length(); ++i) {
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BlockEntryInstr* entry = preorder_[i];
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JoinEntryInstr* join = entry->AsJoinEntry();
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if (join != NULL && join->phis() != NULL) {
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for (intptr_t i = 0; i < join->phis()->length(); ++i) {
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PhiInstr* phi = (*join->phis())[i];
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if (phi != NULL) ValidateUseListsInInstruction(phi);
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}
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}
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for (ForwardInstructionIterator it(entry); !it.Done(); it.Advance()) {
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ValidateUseListsInInstruction(it.Current());
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}
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}
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return true; // Return true so we can ASSERT validation.
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}
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#endif // DEBUG
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static void ClearUseLists(Definition* defn) {
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ASSERT(defn != NULL);
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ASSERT(!defn->HasUses());
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defn->set_input_use_list(NULL);
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defn->set_env_use_list(NULL);
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}
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static void RecordInputUses(Instruction* instr) {
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ASSERT(instr != NULL);
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for (intptr_t i = 0; i < instr->InputCount(); ++i) {
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Value* use = instr->InputAt(i);
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ASSERT(use->instruction() == NULL);
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ASSERT(use->use_index() == -1);
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ASSERT(use->previous_use() == NULL);
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ASSERT(use->next_use() == NULL);
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DEBUG_ASSERT(!FLAG_verify_compiler ||
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(0 == MembershipCount(use, use->definition()->input_use_list())));
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use->set_instruction(instr);
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use->set_use_index(i);
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use->definition()->AddInputUse(use);
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}
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}
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static void RecordEnvUses(Instruction* instr) {
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ASSERT(instr != NULL);
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if (instr->env() == NULL) return;
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intptr_t use_index = 0;
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for (Environment::DeepIterator it(instr->env()); !it.Done(); it.Advance()) {
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Value* use = it.CurrentValue();
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ASSERT(use->instruction() == NULL);
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ASSERT(use->use_index() == -1);
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ASSERT(use->previous_use() == NULL);
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ASSERT(use->next_use() == NULL);
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DEBUG_ASSERT(!FLAG_verify_compiler ||
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(0 == MembershipCount(use, use->definition()->env_use_list())));
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use->set_instruction(instr);
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use->set_use_index(use_index++);
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use->definition()->AddEnvUse(use);
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}
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}
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static void ComputeUseListsRecursive(BlockEntryInstr* block) {
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// Clear phi definitions.
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JoinEntryInstr* join = block->AsJoinEntry();
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if (join != NULL && join->phis() != NULL) {
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for (intptr_t i = 0; i < join->phis()->length(); ++i) {
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PhiInstr* phi = (*join->phis())[i];
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if (phi != NULL) ClearUseLists(phi);
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}
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}
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// Compute uses on normal instructions.
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for (ForwardInstructionIterator it(block); !it.Done(); it.Advance()) {
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Instruction* instr = it.Current();
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if (instr->IsDefinition()) ClearUseLists(instr->AsDefinition());
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RecordInputUses(instr);
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RecordEnvUses(instr);
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}
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// Compute recursively on dominated blocks.
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for (intptr_t i = 0; i < block->dominated_blocks().length(); ++i) {
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ComputeUseListsRecursive(block->dominated_blocks()[i]);
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}
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// Add phi uses on successor edges.
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if (block->last_instruction()->SuccessorCount() == 1 &&
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block->last_instruction()->SuccessorAt(0)->IsJoinEntry()) {
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JoinEntryInstr* join =
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block->last_instruction()->SuccessorAt(0)->AsJoinEntry();
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intptr_t pred_index = join->IndexOfPredecessor(block);
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ASSERT(pred_index >= 0);
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if (join->phis() != NULL) {
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for (intptr_t i = 0; i < join->phis()->length(); ++i) {
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PhiInstr* phi = (*join->phis())[i];
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if (phi == NULL) continue;
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Value* use = phi->InputAt(pred_index);
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ASSERT(use->instruction() == NULL);
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ASSERT(use->use_index() == -1);
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ASSERT(use->previous_use() == NULL);
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ASSERT(use->next_use() == NULL);
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DEBUG_ASSERT(!FLAG_verify_compiler ||
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(0 == MembershipCount(use, use->definition()->input_use_list())));
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use->set_instruction(phi);
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use->set_use_index(pred_index);
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use->definition()->AddInputUse(use);
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}
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}
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}
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}
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void FlowGraph::ComputeUseLists() {
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DEBUG_ASSERT(ResetUseLists());
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// Clear initial definitions.
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for (intptr_t i = 0; i < graph_entry_->initial_definitions()->length(); ++i) {
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ClearUseLists((*graph_entry_->initial_definitions())[i]);
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}
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ComputeUseListsRecursive(graph_entry_);
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DEBUG_ASSERT(!FLAG_verify_compiler || ValidateUseLists());
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}
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void FlowGraph::ComputeSSA(intptr_t next_virtual_register_number,
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GrowableArray<Definition*>* inlining_parameters) {
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ASSERT((next_virtual_register_number == 0) || (inlining_parameters != NULL));
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current_ssa_temp_index_ = next_virtual_register_number;
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GrowableArray<BitVector*> dominance_frontier;
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ComputeDominators(&dominance_frontier);
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InsertPhis(preorder_, assigned_vars_, dominance_frontier);
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GrowableArray<PhiInstr*> live_phis;
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// Rename uses to reference inserted phis where appropriate.
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// Collect phis that reach a non-environment use.
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Rename(&live_phis, inlining_parameters);
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// Propagate alive mark transitively from alive phis.
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MarkLivePhis(&live_phis);
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}
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// Compute immediate dominators and the dominance frontier for each basic
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// block. As a side effect of the algorithm, sets the immediate dominator
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// of each basic block.
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//
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// dominance_frontier: an output parameter encoding the dominance frontier.
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// The array maps the preorder block number of a block to the set of
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// (preorder block numbers of) blocks in the dominance frontier.
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void FlowGraph::ComputeDominators(
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GrowableArray<BitVector*>* dominance_frontier) {
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invalid_dominator_tree_ = false;
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// Use the SEMI-NCA algorithm to compute dominators. This is a two-pass
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// version of the Lengauer-Tarjan algorithm (LT is normally three passes)
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// that eliminates a pass by using nearest-common ancestor (NCA) to
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// compute immediate dominators from semidominators. It also removes a
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// level of indirection in the link-eval forest data structure.
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//
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// The algorithm is described in Georgiadis, Tarjan, and Werneck's
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// "Finding Dominators in Practice".
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// See http://www.cs.princeton.edu/~rwerneck/dominators/ .
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// All arrays are maps between preorder basic-block numbers.
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intptr_t size = parent_.length();
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GrowableArray<intptr_t> idom(size); // Immediate dominator.
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GrowableArray<intptr_t> semi(size); // Semidominator.
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GrowableArray<intptr_t> label(size); // Label for link-eval forest.
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// 1. First pass: compute semidominators as in Lengauer-Tarjan.
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// Semidominators are computed from a depth-first spanning tree and are an
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// approximation of immediate dominators.
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// Use a link-eval data structure with path compression. Implement path
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// compression in place by mutating the parent array. Each block has a
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// label, which is the minimum block number on the compressed path.
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// Initialize idom, semi, and label used by SEMI-NCA. Initialize the
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// dominance frontier output array.
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for (intptr_t i = 0; i < size; ++i) {
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idom.Add(parent_[i]);
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semi.Add(i);
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label.Add(i);
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dominance_frontier->Add(new BitVector(size));
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}
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// Loop over the blocks in reverse preorder (not including the graph
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// entry). Clear the dominated blocks in the graph entry in case
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// ComputeDominators is used to recompute them.
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preorder_[0]->ClearDominatedBlocks();
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for (intptr_t block_index = size - 1; block_index >= 1; --block_index) {
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// Loop over the predecessors.
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BlockEntryInstr* block = preorder_[block_index];
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// Clear the immediately dominated blocks in case ComputeDominators is
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// used to recompute them.
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block->ClearDominatedBlocks();
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for (intptr_t i = 0, count = block->PredecessorCount(); i < count; ++i) {
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BlockEntryInstr* pred = block->PredecessorAt(i);
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ASSERT(pred != NULL);
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// Look for the semidominator by ascending the semidominator path
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// starting from pred.
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intptr_t pred_index = pred->preorder_number();
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intptr_t best = pred_index;
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if (pred_index > block_index) {
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CompressPath(block_index, pred_index, &parent_, &label);
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best = label[pred_index];
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}
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// Update the semidominator if we've found a better one.
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semi[block_index] = Utils::Minimum(semi[block_index], semi[best]);
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}
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// Now use label for the semidominator.
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label[block_index] = semi[block_index];
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}
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// 2. Compute the immediate dominators as the nearest common ancestor of
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// spanning tree parent and semidominator, for all blocks except the entry.
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for (intptr_t block_index = 1; block_index < size; ++block_index) {
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intptr_t dom_index = idom[block_index];
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while (dom_index > semi[block_index]) {
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dom_index = idom[dom_index];
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}
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idom[block_index] = dom_index;
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preorder_[block_index]->set_dominator(preorder_[dom_index]);
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preorder_[dom_index]->AddDominatedBlock(preorder_[block_index]);
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}
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// 3. Now compute the dominance frontier for all blocks. This is
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// algorithm in "A Simple, Fast Dominance Algorithm" (Figure 5), which is
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// attributed to a paper by Ferrante et al. There is no bookkeeping
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// required to avoid adding a block twice to the same block's dominance
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// frontier because we use a set to represent the dominance frontier.
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for (intptr_t block_index = 0; block_index < size; ++block_index) {
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BlockEntryInstr* block = preorder_[block_index];
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intptr_t count = block->PredecessorCount();
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if (count <= 1) continue;
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for (intptr_t i = 0; i < count; ++i) {
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BlockEntryInstr* runner = block->PredecessorAt(i);
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while (runner != block->dominator()) {
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(*dominance_frontier)[runner->preorder_number()]->Add(block_index);
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runner = runner->dominator();
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}
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}
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}
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}
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void FlowGraph::CompressPath(intptr_t start_index,
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intptr_t current_index,
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GrowableArray<intptr_t>* parent,
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GrowableArray<intptr_t>* label) {
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intptr_t next_index = (*parent)[current_index];
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if (next_index > start_index) {
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CompressPath(start_index, next_index, parent, label);
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(*label)[current_index] =
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Utils::Minimum((*label)[current_index], (*label)[next_index]);
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(*parent)[current_index] = (*parent)[next_index];
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}
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}
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void FlowGraph::InsertPhis(
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const GrowableArray<BlockEntryInstr*>& preorder,
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const GrowableArray<BitVector*>& assigned_vars,
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const GrowableArray<BitVector*>& dom_frontier) {
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const intptr_t block_count = preorder.length();
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// Map preorder block number to the highest variable index that has a phi
|
|
// in that block. Use it to avoid inserting multiple phis for the same
|
|
// variable.
|
|
GrowableArray<intptr_t> has_already(block_count);
|
|
// Map preorder block number to the highest variable index for which the
|
|
// block went on the worklist. Use it to avoid adding the same block to
|
|
// the worklist more than once for the same variable.
|
|
GrowableArray<intptr_t> work(block_count);
|
|
|
|
// Initialize has_already and work.
|
|
for (intptr_t block_index = 0; block_index < block_count; ++block_index) {
|
|
has_already.Add(-1);
|
|
work.Add(-1);
|
|
}
|
|
|
|
// Insert phis for each variable in turn.
|
|
GrowableArray<BlockEntryInstr*> worklist;
|
|
for (intptr_t var_index = 0; var_index < variable_count(); ++var_index) {
|
|
// Add to the worklist each block containing an assignment.
|
|
for (intptr_t block_index = 0; block_index < block_count; ++block_index) {
|
|
if (assigned_vars[block_index]->Contains(var_index)) {
|
|
work[block_index] = var_index;
|
|
worklist.Add(preorder[block_index]);
|
|
}
|
|
}
|
|
|
|
while (!worklist.is_empty()) {
|
|
BlockEntryInstr* current = worklist.RemoveLast();
|
|
// Ensure a phi for each block in the dominance frontier of current.
|
|
for (BitVector::Iterator it(dom_frontier[current->preorder_number()]);
|
|
!it.Done();
|
|
it.Advance()) {
|
|
int index = it.Current();
|
|
if (has_already[index] < var_index) {
|
|
BlockEntryInstr* block = preorder[index];
|
|
ASSERT(block->IsJoinEntry());
|
|
block->AsJoinEntry()->InsertPhi(var_index, variable_count());
|
|
has_already[index] = var_index;
|
|
if (work[index] < var_index) {
|
|
work[index] = var_index;
|
|
worklist.Add(block);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
void FlowGraph::Rename(GrowableArray<PhiInstr*>* live_phis,
|
|
GrowableArray<Definition*>* inlining_parameters) {
|
|
// TODO(fschneider): Support catch-entry.
|
|
if (graph_entry_->SuccessorCount() > 1) {
|
|
Bailout("Catch-entry support in SSA.");
|
|
}
|
|
|
|
// Initial renaming environment.
|
|
GrowableArray<Definition*> env(variable_count());
|
|
|
|
// Add global constants to the initial definitions.
|
|
constant_null_ =
|
|
AddConstantToInitialDefinitions(Object::ZoneHandle());
|
|
|
|
// Add parameters to the initial definitions and renaming environment.
|
|
if (inlining_parameters != NULL) {
|
|
// Use known parameters.
|
|
ASSERT(parameter_count() == inlining_parameters->length());
|
|
for (intptr_t i = 0; i < parameter_count(); ++i) {
|
|
Definition* defn = (*inlining_parameters)[i];
|
|
defn->set_ssa_temp_index(alloc_ssa_temp_index()); // New SSA temp.
|
|
AddToInitialDefinitions(defn);
|
|
env.Add(defn);
|
|
}
|
|
} else {
|
|
// Create new parameters.
|
|
for (intptr_t i = 0; i < parameter_count(); ++i) {
|
|
ParameterInstr* param = new ParameterInstr(i, graph_entry_);
|
|
param->set_ssa_temp_index(alloc_ssa_temp_index()); // New SSA temp.
|
|
AddToInitialDefinitions(param);
|
|
env.Add(param);
|
|
}
|
|
}
|
|
|
|
// Initialize all locals with #null in the renaming environment.
|
|
for (intptr_t i = parameter_count(); i < variable_count(); ++i) {
|
|
env.Add(constant_null());
|
|
}
|
|
|
|
BlockEntryInstr* normal_entry = graph_entry_->SuccessorAt(0);
|
|
ASSERT(normal_entry != NULL); // Must have entry.
|
|
RenameRecursive(normal_entry, &env, live_phis);
|
|
}
|
|
|
|
|
|
void FlowGraph::RenameRecursive(BlockEntryInstr* block_entry,
|
|
GrowableArray<Definition*>* env,
|
|
GrowableArray<PhiInstr*>* live_phis) {
|
|
// 1. Process phis first.
|
|
if (block_entry->IsJoinEntry()) {
|
|
JoinEntryInstr* join = block_entry->AsJoinEntry();
|
|
if (join->phis() != NULL) {
|
|
for (intptr_t i = 0; i < join->phis()->length(); ++i) {
|
|
PhiInstr* phi = (*join->phis())[i];
|
|
if (phi != NULL) {
|
|
(*env)[i] = phi;
|
|
phi->set_ssa_temp_index(alloc_ssa_temp_index()); // New SSA temp.
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
// 2. Process normal instructions.
|
|
for (ForwardInstructionIterator it(block_entry); !it.Done(); it.Advance()) {
|
|
Instruction* current = it.Current();
|
|
// Attach current environment to the instructions that can deoptimize and
|
|
// at goto instructions. Optimizations like LICM expect an environment at
|
|
// gotos.
|
|
if (current->CanDeoptimize() || current->IsGoto()) {
|
|
current->set_env(Environment::From(*env,
|
|
num_non_copied_params_,
|
|
parsed_function_.function()));
|
|
}
|
|
if (current->CanDeoptimize()) {
|
|
current->env()->set_deopt_id(current->deopt_id());
|
|
}
|
|
|
|
// 2a. Handle uses:
|
|
// Update expression stack environment for each use.
|
|
// For each use of a LoadLocal or StoreLocal: Replace it with the value
|
|
// from the environment.
|
|
for (intptr_t i = current->InputCount() - 1; i >= 0; --i) {
|
|
Value* v = current->InputAt(i);
|
|
// Update expression stack.
|
|
ASSERT(env->length() > variable_count());
|
|
|
|
Definition* reaching_defn = env->RemoveLast();
|
|
|
|
Definition* input_defn = v->definition();
|
|
if (input_defn->IsLoadLocal() || input_defn->IsStoreLocal()) {
|
|
// Remove the load/store from the graph.
|
|
input_defn->RemoveFromGraph();
|
|
// Assert we are not referencing nulls in the initial environment.
|
|
ASSERT(reaching_defn->ssa_temp_index() != -1);
|
|
current->SetInputAt(i, new Value(reaching_defn));
|
|
}
|
|
}
|
|
|
|
// Drop pushed arguments for calls.
|
|
for (intptr_t j = 0; j < current->ArgumentCount(); j++) {
|
|
env->RemoveLast();
|
|
}
|
|
|
|
// 2b. Handle LoadLocal and StoreLocal.
|
|
// For each LoadLocal: Remove it from the graph.
|
|
// For each StoreLocal: Remove it from the graph and update the environment.
|
|
Definition* definition = current->AsDefinition();
|
|
if (definition != NULL) {
|
|
LoadLocalInstr* load = definition->AsLoadLocal();
|
|
StoreLocalInstr* store = definition->AsStoreLocal();
|
|
if ((load != NULL) || (store != NULL)) {
|
|
intptr_t index;
|
|
if (store != NULL) {
|
|
index = store->local().BitIndexIn(num_non_copied_params_);
|
|
// Update renaming environment.
|
|
(*env)[index] = store->value()->definition();
|
|
} else {
|
|
// The graph construction ensures we do not have an unused LoadLocal
|
|
// computation.
|
|
ASSERT(definition->is_used());
|
|
index = load->local().BitIndexIn(num_non_copied_params_);
|
|
|
|
PhiInstr* phi = (*env)[index]->AsPhi();
|
|
if ((phi != NULL) && !phi->is_alive()) {
|
|
phi->mark_alive();
|
|
live_phis->Add(phi);
|
|
}
|
|
}
|
|
// Update expression stack or remove from graph.
|
|
if (definition->is_used()) {
|
|
env->Add((*env)[index]);
|
|
// We remove load/store instructions when we find their use in 2a.
|
|
} else {
|
|
it.RemoveCurrentFromGraph();
|
|
}
|
|
} else {
|
|
// Not a load or store.
|
|
if (definition->is_used()) {
|
|
// Assign fresh SSA temporary and update expression stack.
|
|
definition->set_ssa_temp_index(alloc_ssa_temp_index());
|
|
env->Add(definition);
|
|
}
|
|
}
|
|
}
|
|
|
|
// 2c. Handle pushed argument.
|
|
PushArgumentInstr* push = current->AsPushArgument();
|
|
if (push != NULL) {
|
|
env->Add(push);
|
|
}
|
|
}
|
|
|
|
// 3. Process dominated blocks.
|
|
for (intptr_t i = 0; i < block_entry->dominated_blocks().length(); ++i) {
|
|
BlockEntryInstr* block = block_entry->dominated_blocks()[i];
|
|
GrowableArray<Definition*> new_env(env->length());
|
|
new_env.AddArray(*env);
|
|
RenameRecursive(block, &new_env, live_phis);
|
|
}
|
|
|
|
// 4. Process successor block. We have edge-split form, so that only blocks
|
|
// with one successor can have a join block as successor.
|
|
if ((block_entry->last_instruction()->SuccessorCount() == 1) &&
|
|
block_entry->last_instruction()->SuccessorAt(0)->IsJoinEntry()) {
|
|
JoinEntryInstr* successor =
|
|
block_entry->last_instruction()->SuccessorAt(0)->AsJoinEntry();
|
|
intptr_t pred_index = successor->IndexOfPredecessor(block_entry);
|
|
ASSERT(pred_index >= 0);
|
|
if (successor->phis() != NULL) {
|
|
for (intptr_t i = 0; i < successor->phis()->length(); ++i) {
|
|
PhiInstr* phi = (*successor->phis())[i];
|
|
if (phi != NULL) {
|
|
// Rename input operand.
|
|
phi->SetInputAt(pred_index, new Value((*env)[i]));
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
void FlowGraph::MarkLivePhis(GrowableArray<PhiInstr*>* live_phis) {
|
|
while (!live_phis->is_empty()) {
|
|
PhiInstr* phi = live_phis->RemoveLast();
|
|
for (intptr_t i = 0; i < phi->InputCount(); i++) {
|
|
Value* val = phi->InputAt(i);
|
|
PhiInstr* used_phi = val->definition()->AsPhi();
|
|
if ((used_phi != NULL) && !used_phi->is_alive()) {
|
|
used_phi->mark_alive();
|
|
live_phis->Add(used_phi);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
// Find the natural loop for the back edge m->n and attach loop information
|
|
// to block n (loop header). The algorithm is described in "Advanced Compiler
|
|
// Design & Implementation" (Muchnick) p192.
|
|
static void FindLoop(BlockEntryInstr* m,
|
|
BlockEntryInstr* n,
|
|
intptr_t num_blocks) {
|
|
GrowableArray<BlockEntryInstr*> stack;
|
|
BitVector* loop = new BitVector(num_blocks);
|
|
|
|
loop->Add(n->preorder_number());
|
|
if (n != m) {
|
|
loop->Add(m->preorder_number());
|
|
stack.Add(m);
|
|
}
|
|
|
|
while (!stack.is_empty()) {
|
|
BlockEntryInstr* p = stack.RemoveLast();
|
|
for (intptr_t i = 0; i < p->PredecessorCount(); ++i) {
|
|
BlockEntryInstr* q = p->PredecessorAt(i);
|
|
if (!loop->Contains(q->preorder_number())) {
|
|
loop->Add(q->preorder_number());
|
|
stack.Add(q);
|
|
}
|
|
}
|
|
}
|
|
n->set_loop_info(loop);
|
|
if (FLAG_trace_optimization) {
|
|
for (BitVector::Iterator it(loop); !it.Done(); it.Advance()) {
|
|
OS::Print(" B%"Pd"\n", it.Current());
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
void FlowGraph::ComputeLoops(GrowableArray<BlockEntryInstr*>* loop_headers) {
|
|
ASSERT(loop_headers->is_empty());
|
|
for (BlockIterator it = postorder_iterator();
|
|
!it.Done();
|
|
it.Advance()) {
|
|
BlockEntryInstr* block = it.Current();
|
|
for (intptr_t i = 0; i < block->PredecessorCount(); ++i) {
|
|
BlockEntryInstr* pred = block->PredecessorAt(i);
|
|
if (block->Dominates(pred)) {
|
|
if (FLAG_trace_optimization) {
|
|
OS::Print("Back edge B%"Pd" -> B%"Pd"\n", pred->block_id(),
|
|
block->block_id());
|
|
}
|
|
FindLoop(pred, block, preorder_.length());
|
|
loop_headers->Add(block);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
void FlowGraph::Bailout(const char* reason) const {
|
|
const char* kFormat = "FlowGraph Bailout: %s %s";
|
|
const char* function_name = parsed_function_.function().ToCString();
|
|
intptr_t len = OS::SNPrint(NULL, 0, kFormat, function_name, reason) + 1;
|
|
char* chars = Isolate::Current()->current_zone()->Alloc<char>(len);
|
|
OS::SNPrint(chars, len, kFormat, function_name, reason);
|
|
const Error& error = Error::Handle(
|
|
LanguageError::New(String::Handle(String::New(chars))));
|
|
Isolate::Current()->long_jump_base()->Jump(1, error);
|
|
}
|
|
|
|
|
|
void FlowGraph::RepairGraphAfterInlining() {
|
|
DiscoverBlocks();
|
|
if (invalid_dominator_tree_) {
|
|
GrowableArray<BitVector*> dominance_frontier;
|
|
ComputeDominators(&dominance_frontier);
|
|
}
|
|
}
|
|
|
|
|
|
intptr_t FlowGraph::InstructionCount() const {
|
|
intptr_t size = 0;
|
|
// Iterate each block, skipping the graph entry.
|
|
for (intptr_t i = 1; i < preorder_.length(); ++i) {
|
|
for (ForwardInstructionIterator it(preorder_[i]);
|
|
!it.Done();
|
|
it.Advance()) {
|
|
++size;
|
|
}
|
|
}
|
|
return size;
|
|
}
|
|
|
|
|
|
} // namespace dart
|