e4c71e830f
Function entry points have been subject to block scheduling since 06f9a9e354. Block scheduling in AOT never reorders the entries.
Bug: https://github.com/dart-lang/sdk/issues/36409
Bug: https://github.com/dart-lang/sdk/issues/36731
Change-Id: Id6725fed4d9bbd381631fa88c5397435a35acc9a
Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/102463
Commit-Queue: Ryan Macnak <rmacnak@google.com>
Reviewed-by: Alexander Markov <alexmarkov@google.com>
309 lines
10 KiB
C++
309 lines
10 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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#if !defined(DART_PRECOMPILED_RUNTIME)
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#include "vm/compiler/backend/block_scheduler.h"
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#include "vm/allocation.h"
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#include "vm/code_patcher.h"
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#include "vm/compiler/backend/flow_graph.h"
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#include "vm/compiler/jit/compiler.h"
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namespace dart {
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static intptr_t GetEdgeCount(const Array& edge_counters, intptr_t edge_id) {
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if (!FLAG_reorder_basic_blocks) {
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// Assume everything was visited once.
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return 1;
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}
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return Smi::Value(Smi::RawCast(edge_counters.At(edge_id)));
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}
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// There is an edge from instruction->successor. Set its weight (edge count
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// per function entry).
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static void SetEdgeWeight(BlockEntryInstr* block,
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BlockEntryInstr* successor,
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const Array& edge_counters,
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intptr_t entry_count) {
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TargetEntryInstr* target = successor->AsTargetEntry();
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if (target != NULL) {
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// If this block ends in a goto, the edge count of this edge is the same
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// as the count on the single outgoing edge. This is true as long as the
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// block does not throw an exception.
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intptr_t count = GetEdgeCount(edge_counters, target->preorder_number());
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if ((count >= 0) && (entry_count != 0)) {
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double weight =
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static_cast<double>(count) / static_cast<double>(entry_count);
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target->set_edge_weight(weight);
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}
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} else {
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GotoInstr* jump = block->last_instruction()->AsGoto();
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if (jump != NULL) {
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intptr_t count = GetEdgeCount(edge_counters, block->preorder_number());
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if ((count >= 0) && (entry_count != 0)) {
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double weight =
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static_cast<double>(count) / static_cast<double>(entry_count);
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jump->set_edge_weight(weight);
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}
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}
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}
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}
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void BlockScheduler::AssignEdgeWeights() const {
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if (!FLAG_reorder_basic_blocks) {
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return;
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}
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if (FLAG_precompiled_mode) {
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return;
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}
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const Function& function = flow_graph()->parsed_function().function();
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const Array& ic_data_array =
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Array::Handle(flow_graph()->zone(), function.ic_data_array());
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if (Compiler::IsBackgroundCompilation() && ic_data_array.IsNull()) {
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// Deferred loading cleared ic_data_array.
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Compiler::AbortBackgroundCompilation(
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DeoptId::kNone, "BlockScheduler: ICData array cleared");
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}
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if (ic_data_array.IsNull()) {
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DEBUG_ASSERT(Isolate::Current()->HasAttemptedReload() ||
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function.ForceOptimize());
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return;
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}
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Array& edge_counters = Array::Handle();
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edge_counters ^= ic_data_array.At(0);
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auto graph_entry = flow_graph()->graph_entry();
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BlockEntryInstr* entry = graph_entry->normal_entry();
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if (entry == nullptr) {
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entry = graph_entry->osr_entry();
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ASSERT(entry != nullptr);
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}
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const intptr_t entry_count =
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GetEdgeCount(edge_counters, entry->preorder_number());
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graph_entry->set_entry_count(entry_count);
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for (BlockIterator it = flow_graph()->reverse_postorder_iterator();
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!it.Done(); it.Advance()) {
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BlockEntryInstr* block = it.Current();
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Instruction* last = block->last_instruction();
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for (intptr_t i = 0; i < last->SuccessorCount(); ++i) {
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BlockEntryInstr* succ = last->SuccessorAt(i);
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SetEdgeWeight(block, succ, edge_counters, entry_count);
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}
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}
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}
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// A weighted control-flow graph edge.
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struct Edge {
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Edge(BlockEntryInstr* source, BlockEntryInstr* target, double weight)
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: source(source), target(target), weight(weight) {}
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static int LowestWeightFirst(const Edge* a, const Edge* b);
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BlockEntryInstr* source;
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BlockEntryInstr* target;
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double weight;
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};
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// A linked list node in a chain of blocks.
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struct Link : public ZoneAllocated {
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Link(BlockEntryInstr* block, Link* next) : block(block), next(next) {}
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BlockEntryInstr* block;
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Link* next;
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};
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// A chain of blocks with first and last pointers for fast concatenation and
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// a length to support adding a shorter chain's links to a longer chain.
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struct Chain : public ZoneAllocated {
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explicit Chain(BlockEntryInstr* block)
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: first(new Link(block, NULL)), last(first), length(1) {}
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Link* first;
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Link* last;
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intptr_t length;
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};
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int Edge::LowestWeightFirst(const Edge* a, const Edge* b) {
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if (a->weight < b->weight) {
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return -1;
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}
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return (a->weight > b->weight) ? 1 : 0;
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}
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// Combine two chains by adding the shorter chain's links to the longer
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// chain.
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static void Union(GrowableArray<Chain*>* chains,
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Chain* source_chain,
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Chain* target_chain) {
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if (source_chain->length < target_chain->length) {
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for (Link* link = source_chain->first; link != NULL; link = link->next) {
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(*chains)[link->block->postorder_number()] = target_chain;
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}
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// Link the chains.
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source_chain->last->next = target_chain->first;
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// Update the state of the longer chain.
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target_chain->first = source_chain->first;
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target_chain->length += source_chain->length;
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} else {
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for (Link* link = target_chain->first; link != NULL; link = link->next) {
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(*chains)[link->block->postorder_number()] = source_chain;
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}
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source_chain->last->next = target_chain->first;
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source_chain->last = target_chain->last;
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source_chain->length += target_chain->length;
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}
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}
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void BlockScheduler::ReorderBlocks() const {
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if (FLAG_precompiled_mode) {
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ReorderBlocksAOT();
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} else {
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ReorderBlocksJIT();
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}
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}
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void BlockScheduler::ReorderBlocksJIT() const {
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if (!FLAG_reorder_basic_blocks) {
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return;
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}
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// Add every block to a chain of length 1 and compute a list of edges
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// sorted by weight.
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intptr_t block_count = flow_graph()->preorder().length();
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GrowableArray<Edge> edges(2 * block_count);
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// A map from a block's postorder number to the chain it is in. Used to
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// implement a simple (ordered) union-find data structure. Chains are
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// stored by pointer so that they are aliased (mutating one mutates all
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// shared ones). Find(n) is simply chains[n].
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GrowableArray<Chain*> chains(block_count);
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for (BlockIterator it = flow_graph()->postorder_iterator(); !it.Done();
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it.Advance()) {
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BlockEntryInstr* block = it.Current();
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chains.Add(new Chain(block));
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Instruction* last = block->last_instruction();
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for (intptr_t i = 0; i < last->SuccessorCount(); ++i) {
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BlockEntryInstr* succ = last->SuccessorAt(i);
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double weight = 0.0;
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if (succ->IsTargetEntry()) {
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weight = succ->AsTargetEntry()->edge_weight();
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} else if (last->IsGoto()) {
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weight = last->AsGoto()->edge_weight();
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}
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edges.Add(Edge(block, succ, weight));
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}
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}
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// Handle each edge in turn. The edges are sorted by increasing weight.
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edges.Sort(Edge::LowestWeightFirst);
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while (!edges.is_empty()) {
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Edge edge = edges.RemoveLast();
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Chain* source_chain = chains[edge.source->postorder_number()];
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Chain* target_chain = chains[edge.target->postorder_number()];
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// If the source and target are already in the same chain or if the
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// edge's source or target is not exposed at the appropriate end of a
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// chain skip this edge.
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if ((source_chain == target_chain) ||
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(edge.source != source_chain->last->block) ||
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(edge.target != target_chain->first->block)) {
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continue;
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}
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Union(&chains, source_chain, target_chain);
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}
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// Ensure the checked entry remains first to avoid needing another offset on
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// Instructions, compare Code::EntryPoint.
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GraphEntryInstr* graph_entry = flow_graph()->graph_entry();
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flow_graph()->CodegenBlockOrder(true)->Add(graph_entry);
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FunctionEntryInstr* checked_entry = graph_entry->normal_entry();
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if (checked_entry != nullptr) {
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flow_graph()->CodegenBlockOrder(true)->Add(checked_entry);
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}
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// Build a new block order. Emit each chain when its first block occurs
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// in the original reverse postorder ordering (which gives a topological
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// sort of the blocks).
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for (intptr_t i = block_count - 1; i >= 0; --i) {
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if (chains[i]->first->block == flow_graph()->postorder()[i]) {
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for (Link* link = chains[i]->first; link != NULL; link = link->next) {
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if ((link->block != checked_entry) && (link->block != graph_entry)) {
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flow_graph()->CodegenBlockOrder(true)->Add(link->block);
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}
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}
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}
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}
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}
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// Moves blocks ending in a throw/rethrow, as well as any block post-dominated
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// by such a throwing block, to the end.
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void BlockScheduler::ReorderBlocksAOT() const {
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if (!FLAG_reorder_basic_blocks) {
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return;
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}
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auto& reverse_postorder = flow_graph()->reverse_postorder();
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const intptr_t block_count = reverse_postorder.length();
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GrowableArray<bool> is_terminating(block_count);
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is_terminating.FillWith(false, 0, block_count);
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// Any block in the worklist is marked and any of its unconditional
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// predecessors need to be marked as well.
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GrowableArray<BlockEntryInstr*> worklist;
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// Add all throwing blocks to the worklist.
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for (intptr_t i = 0; i < block_count; ++i) {
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auto block = reverse_postorder[i];
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auto last = block->last_instruction();
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if (last->IsThrow() || last->IsReThrow()) {
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const intptr_t preorder_nr = block->preorder_number();
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is_terminating[preorder_nr] = true;
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worklist.Add(block);
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}
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}
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// Follow all indirect predecessors which unconditionally will end up in a
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// throwing block.
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while (worklist.length() > 0) {
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auto block = worklist.RemoveLast();
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for (intptr_t i = 0; i < block->PredecessorCount(); ++i) {
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auto predecessor = block->PredecessorAt(i);
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if (predecessor->last_instruction()->IsGoto()) {
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const intptr_t preorder_nr = predecessor->preorder_number();
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if (!is_terminating[preorder_nr]) {
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is_terminating[preorder_nr] = true;
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worklist.Add(predecessor);
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}
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}
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}
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}
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// Emit code in reverse postorder but move any throwing blocks (except the
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// function entry, which needs to come first) to the very end.
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auto& codegen_order = *flow_graph()->CodegenBlockOrder(true);
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for (intptr_t i = 0; i < block_count; ++i) {
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auto block = reverse_postorder[i];
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const intptr_t preorder_nr = block->preorder_number();
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if (!is_terminating[preorder_nr] || block->IsFunctionEntry()) {
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codegen_order.Add(block);
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}
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}
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for (intptr_t i = 0; i < block_count; ++i) {
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auto block = reverse_postorder[i];
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const intptr_t preorder_nr = block->preorder_number();
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if (is_terminating[preorder_nr] && !block->IsFunctionEntry()) {
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codegen_order.Add(block);
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}
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}
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}
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} // namespace dart
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#endif // !defined(DART_PRECOMPILED_RUNTIME)
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