725 lines
25 KiB
C++
725 lines
25 KiB
C++
/*
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* Copyright (C) 2015 The Android Open Source Project
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include <regex>
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#include "base/arena_allocator.h"
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#include "builder.h"
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#include "induction_var_analysis.h"
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#include "nodes.h"
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#include "optimizing_unit_test.h"
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namespace art {
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/**
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* Fixture class for the InductionVarAnalysis tests.
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*/
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class InductionVarAnalysisTest : public CommonCompilerTest {
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public:
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InductionVarAnalysisTest() : pool_(), allocator_(&pool_) {
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graph_ = CreateGraph(&allocator_);
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}
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~InductionVarAnalysisTest() { }
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// Builds single for-loop at depth d.
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void BuildForLoop(int d, int n) {
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ASSERT_LT(d, n);
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loop_preheader_[d] = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(loop_preheader_[d]);
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loop_header_[d] = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(loop_header_[d]);
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loop_preheader_[d]->AddSuccessor(loop_header_[d]);
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if (d < (n - 1)) {
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BuildForLoop(d + 1, n);
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}
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loop_body_[d] = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(loop_body_[d]);
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loop_body_[d]->AddSuccessor(loop_header_[d]);
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if (d < (n - 1)) {
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loop_header_[d]->AddSuccessor(loop_preheader_[d + 1]);
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loop_header_[d + 1]->AddSuccessor(loop_body_[d]);
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} else {
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loop_header_[d]->AddSuccessor(loop_body_[d]);
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}
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}
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// Builds a n-nested loop in CFG where each loop at depth 0 <= d < n
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// is defined as "for (int i_d = 0; i_d < 100; i_d++)". Tests can further
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// populate the loop with instructions to set up interesting scenarios.
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void BuildLoopNest(int n) {
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ASSERT_LE(n, 10);
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graph_->SetNumberOfVRegs(n + 3);
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// Build basic blocks with entry, nested loop, exit.
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entry_ = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(entry_);
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BuildForLoop(0, n);
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return_ = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(return_);
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exit_ = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(exit_);
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entry_->AddSuccessor(loop_preheader_[0]);
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loop_header_[0]->AddSuccessor(return_);
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return_->AddSuccessor(exit_);
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graph_->SetEntryBlock(entry_);
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graph_->SetExitBlock(exit_);
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// Provide entry and exit instructions.
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parameter_ = new (&allocator_) HParameterValue(
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graph_->GetDexFile(), 0, 0, Primitive::kPrimNot, true);
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entry_->AddInstruction(parameter_);
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constant0_ = graph_->GetIntConstant(0);
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constant1_ = graph_->GetIntConstant(1);
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constant100_ = graph_->GetIntConstant(100);
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float_constant0_ = graph_->GetFloatConstant(0.0f);
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return_->AddInstruction(new (&allocator_) HReturnVoid());
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exit_->AddInstruction(new (&allocator_) HExit());
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// Provide loop instructions.
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for (int d = 0; d < n; d++) {
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basic_[d] = new (&allocator_) HPhi(&allocator_, d, 0, Primitive::kPrimInt);
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loop_preheader_[d]->AddInstruction(new (&allocator_) HGoto());
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loop_header_[d]->AddPhi(basic_[d]);
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HInstruction* compare = new (&allocator_) HLessThan(basic_[d], constant100_);
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loop_header_[d]->AddInstruction(compare);
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loop_header_[d]->AddInstruction(new (&allocator_) HIf(compare));
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increment_[d] = new (&allocator_) HAdd(Primitive::kPrimInt, basic_[d], constant1_);
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loop_body_[d]->AddInstruction(increment_[d]);
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loop_body_[d]->AddInstruction(new (&allocator_) HGoto());
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basic_[d]->AddInput(constant0_);
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basic_[d]->AddInput(increment_[d]);
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}
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}
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// Builds if-statement at depth d.
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HPhi* BuildIf(int d, HBasicBlock** ifT, HBasicBlock **ifF) {
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HBasicBlock* cond = new (&allocator_) HBasicBlock(graph_);
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HBasicBlock* ifTrue = new (&allocator_) HBasicBlock(graph_);
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HBasicBlock* ifFalse = new (&allocator_) HBasicBlock(graph_);
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graph_->AddBlock(cond);
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graph_->AddBlock(ifTrue);
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graph_->AddBlock(ifFalse);
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// Conditional split.
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loop_header_[d]->ReplaceSuccessor(loop_body_[d], cond);
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cond->AddSuccessor(ifTrue);
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cond->AddSuccessor(ifFalse);
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ifTrue->AddSuccessor(loop_body_[d]);
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ifFalse->AddSuccessor(loop_body_[d]);
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cond->AddInstruction(new (&allocator_) HIf(parameter_));
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*ifT = ifTrue;
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*ifF = ifFalse;
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HPhi* select_phi = new (&allocator_) HPhi(&allocator_, -1, 0, Primitive::kPrimInt);
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loop_body_[d]->AddPhi(select_phi);
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return select_phi;
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}
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// Inserts instruction right before increment at depth d.
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HInstruction* InsertInstruction(HInstruction* instruction, int d) {
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loop_body_[d]->InsertInstructionBefore(instruction, increment_[d]);
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return instruction;
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}
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// Inserts a phi to loop header at depth d and returns it.
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HPhi* InsertLoopPhi(int vreg, int d) {
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HPhi* phi = new (&allocator_) HPhi(&allocator_, vreg, 0, Primitive::kPrimInt);
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loop_header_[d]->AddPhi(phi);
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return phi;
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}
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// Inserts an array store with given `subscript` at depth d to
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// enable tests to inspect the computed induction at that point easily.
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HInstruction* InsertArrayStore(HInstruction* subscript, int d) {
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// ArraySet is given a float value in order to avoid SsaBuilder typing
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// it from the array's non-existent reference type info.
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return InsertInstruction(new (&allocator_) HArraySet(
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parameter_, subscript, float_constant0_, Primitive::kPrimFloat, 0), d);
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}
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// Returns induction information of instruction in loop at depth d.
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std::string GetInductionInfo(HInstruction* instruction, int d) {
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return HInductionVarAnalysis::InductionToString(
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iva_->LookupInfo(loop_body_[d]->GetLoopInformation(), instruction));
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}
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// Returns true if instructions have identical induction.
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bool HaveSameInduction(HInstruction* instruction1, HInstruction* instruction2) {
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return HInductionVarAnalysis::InductionEqual(
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iva_->LookupInfo(loop_body_[0]->GetLoopInformation(), instruction1),
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iva_->LookupInfo(loop_body_[0]->GetLoopInformation(), instruction2));
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}
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// Performs InductionVarAnalysis (after proper set up).
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void PerformInductionVarAnalysis() {
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graph_->BuildDominatorTree();
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iva_ = new (&allocator_) HInductionVarAnalysis(graph_);
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iva_->Run();
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}
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// General building fields.
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ArenaPool pool_;
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ArenaAllocator allocator_;
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HGraph* graph_;
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HInductionVarAnalysis* iva_;
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// Fixed basic blocks and instructions.
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HBasicBlock* entry_;
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HBasicBlock* return_;
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HBasicBlock* exit_;
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HInstruction* parameter_; // "this"
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HInstruction* constant0_;
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HInstruction* constant1_;
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HInstruction* constant100_;
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HInstruction* float_constant0_;
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// Loop specifics.
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HBasicBlock* loop_preheader_[10];
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HBasicBlock* loop_header_[10];
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HBasicBlock* loop_body_[10];
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HInstruction* increment_[10];
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HPhi* basic_[10]; // "vreg_d", the "i_d"
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};
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//
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// The actual InductionVarAnalysis tests.
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//
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TEST_F(InductionVarAnalysisTest, ProperLoopSetup) {
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// Setup:
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// for (int i_0 = 0; i_0 < 100; i_0++) {
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// ..
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// for (int i_9 = 0; i_9 < 100; i_9++) {
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// }
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// ..
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// }
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BuildLoopNest(10);
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graph_->BuildDominatorTree();
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ASSERT_EQ(entry_->GetLoopInformation(), nullptr);
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for (int d = 0; d < 1; d++) {
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ASSERT_EQ(loop_preheader_[d]->GetLoopInformation(),
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(d == 0) ? nullptr
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: loop_header_[d - 1]->GetLoopInformation());
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ASSERT_NE(loop_header_[d]->GetLoopInformation(), nullptr);
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ASSERT_NE(loop_body_[d]->GetLoopInformation(), nullptr);
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ASSERT_EQ(loop_header_[d]->GetLoopInformation(),
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loop_body_[d]->GetLoopInformation());
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}
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ASSERT_EQ(exit_->GetLoopInformation(), nullptr);
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}
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TEST_F(InductionVarAnalysisTest, FindBasicInduction) {
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// Setup:
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// for (int i = 0; i < 100; i++) {
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// a[i] = 0;
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// }
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BuildLoopNest(1);
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HInstruction* store = InsertArrayStore(basic_[0], 0);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("((1) * i + (0)):PrimInt", GetInductionInfo(store->InputAt(1), 0).c_str());
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EXPECT_STREQ("((1) * i + (1)):PrimInt", GetInductionInfo(increment_[0], 0).c_str());
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// Offset matters!
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EXPECT_FALSE(HaveSameInduction(store->InputAt(1), increment_[0]));
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// Trip-count.
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EXPECT_STREQ("((100) (TC-loop) ((0) < (100)))",
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GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
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}
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TEST_F(InductionVarAnalysisTest, FindDerivedInduction) {
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// Setup:
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// for (int i = 0; i < 100; i++) {
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// k = 100 + i;
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// k = 100 - i;
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// k = 100 * i;
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// k = i << 1;
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// k = - i;
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// }
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BuildLoopNest(1);
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HInstruction *add = InsertInstruction(
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new (&allocator_) HAdd(Primitive::kPrimInt, constant100_, basic_[0]), 0);
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HInstruction *sub = InsertInstruction(
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new (&allocator_) HSub(Primitive::kPrimInt, constant100_, basic_[0]), 0);
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HInstruction *mul = InsertInstruction(
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new (&allocator_) HMul(Primitive::kPrimInt, constant100_, basic_[0]), 0);
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HInstruction *shl = InsertInstruction(
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new (&allocator_) HShl(Primitive::kPrimInt, basic_[0], constant1_), 0);
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HInstruction *neg = InsertInstruction(
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new (&allocator_) HNeg(Primitive::kPrimInt, basic_[0]), 0);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("((1) * i + (100)):PrimInt", GetInductionInfo(add, 0).c_str());
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EXPECT_STREQ("(( - (1)) * i + (100)):PrimInt", GetInductionInfo(sub, 0).c_str());
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EXPECT_STREQ("((100) * i + (0)):PrimInt", GetInductionInfo(mul, 0).c_str());
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EXPECT_STREQ("((2) * i + (0)):PrimInt", GetInductionInfo(shl, 0).c_str());
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EXPECT_STREQ("(( - (1)) * i + (0)):PrimInt", GetInductionInfo(neg, 0).c_str());
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}
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TEST_F(InductionVarAnalysisTest, FindChainInduction) {
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// Setup:
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// k = 0;
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// for (int i = 0; i < 100; i++) {
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// k = k + 100;
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// a[k] = 0;
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// k = k - 1;
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// a[k] = 0;
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// }
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BuildLoopNest(1);
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HPhi* k = InsertLoopPhi(0, 0);
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k->AddInput(constant0_);
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HInstruction *add = InsertInstruction(
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new (&allocator_) HAdd(Primitive::kPrimInt, k, constant100_), 0);
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HInstruction* store1 = InsertArrayStore(add, 0);
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HInstruction *sub = InsertInstruction(
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new (&allocator_) HSub(Primitive::kPrimInt, add, constant1_), 0);
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HInstruction* store2 = InsertArrayStore(sub, 0);
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k->AddInput(sub);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("(((100) - (1)) * i + (100)):PrimInt",
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GetInductionInfo(store1->InputAt(1), 0).c_str());
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EXPECT_STREQ("(((100) - (1)) * i + ((100) - (1))):PrimInt",
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GetInductionInfo(store2->InputAt(1), 0).c_str());
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}
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TEST_F(InductionVarAnalysisTest, FindTwoWayBasicInduction) {
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// Setup:
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// k = 0;
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// for (int i = 0; i < 100; i++) {
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// if () k = k + 1;
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// else k = k + 1;
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// a[k] = 0;
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// }
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BuildLoopNest(1);
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HPhi* k_header = InsertLoopPhi(0, 0);
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k_header->AddInput(constant0_);
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HBasicBlock* ifTrue;
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HBasicBlock* ifFalse;
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HPhi* k_body = BuildIf(0, &ifTrue, &ifFalse);
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// True-branch.
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HInstruction* inc1 = new (&allocator_) HAdd(Primitive::kPrimInt, k_header, constant1_);
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ifTrue->AddInstruction(inc1);
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k_body->AddInput(inc1);
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// False-branch.
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HInstruction* inc2 = new (&allocator_) HAdd(Primitive::kPrimInt, k_header, constant1_);
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ifFalse->AddInstruction(inc2);
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k_body->AddInput(inc2);
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// Merge over a phi.
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HInstruction* store = InsertArrayStore(k_body, 0);
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k_header->AddInput(k_body);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("((1) * i + (1)):PrimInt", GetInductionInfo(store->InputAt(1), 0).c_str());
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// Both increments get same induction.
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EXPECT_TRUE(HaveSameInduction(store->InputAt(1), inc1));
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EXPECT_TRUE(HaveSameInduction(store->InputAt(1), inc2));
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}
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TEST_F(InductionVarAnalysisTest, FindTwoWayDerivedInduction) {
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// Setup:
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// for (int i = 0; i < 100; i++) {
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// if () k = i + 1;
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// else k = i + 1;
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// a[k] = 0;
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// }
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BuildLoopNest(1);
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HBasicBlock* ifTrue;
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HBasicBlock* ifFalse;
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HPhi* k = BuildIf(0, &ifTrue, &ifFalse);
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// True-branch.
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HInstruction* inc1 = new (&allocator_) HAdd(Primitive::kPrimInt, basic_[0], constant1_);
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ifTrue->AddInstruction(inc1);
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k->AddInput(inc1);
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// False-branch.
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HInstruction* inc2 = new (&allocator_) HAdd(Primitive::kPrimInt, basic_[0], constant1_);
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ifFalse->AddInstruction(inc2);
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k->AddInput(inc2);
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// Merge over a phi.
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HInstruction* store = InsertArrayStore(k, 0);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("((1) * i + (1)):PrimInt", GetInductionInfo(store->InputAt(1), 0).c_str());
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}
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TEST_F(InductionVarAnalysisTest, FindFirstOrderWrapAroundInduction) {
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// Setup:
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// k = 0;
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// for (int i = 0; i < 100; i++) {
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// a[k] = 0;
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// k = 100 - i;
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// }
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BuildLoopNest(1);
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HPhi* k = InsertLoopPhi(0, 0);
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k->AddInput(constant0_);
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HInstruction* store = InsertArrayStore(k, 0);
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HInstruction *sub = InsertInstruction(
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new (&allocator_) HSub(Primitive::kPrimInt, constant100_, basic_[0]), 0);
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k->AddInput(sub);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("wrap((0), (( - (1)) * i + (100)):PrimInt):PrimInt",
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GetInductionInfo(store->InputAt(1), 0).c_str());
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}
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TEST_F(InductionVarAnalysisTest, FindSecondOrderWrapAroundInduction) {
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// Setup:
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// k = 0;
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// t = 100;
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// for (int i = 0; i < 100; i++) {
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// a[k] = 0;
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// k = t;
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// t = 100 - i;
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// }
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BuildLoopNest(1);
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HPhi* k = InsertLoopPhi(0, 0);
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k->AddInput(constant0_);
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HPhi* t = InsertLoopPhi(1, 0);
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t->AddInput(constant100_);
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HInstruction* store = InsertArrayStore(k, 0);
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k->AddInput(t);
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HInstruction *sub = InsertInstruction(
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new (&allocator_) HSub(Primitive::kPrimInt, constant100_, basic_[0], 0), 0);
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t->AddInput(sub);
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PerformInductionVarAnalysis();
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EXPECT_STREQ("wrap((0), wrap((100), (( - (1)) * i + (100)):PrimInt):PrimInt):PrimInt",
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GetInductionInfo(store->InputAt(1), 0).c_str());
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}
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TEST_F(InductionVarAnalysisTest, FindWrapAroundDerivedInduction) {
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// Setup:
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// k = 0;
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// for (int i = 0; i < 100; i++) {
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// t = k + 100;
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// t = k - 100;
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// t = k * 100;
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// t = k << 1;
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// t = - k;
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// k = i << 1;
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// }
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BuildLoopNest(1);
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HPhi* k = InsertLoopPhi(0, 0);
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k->AddInput(constant0_);
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HInstruction *add = InsertInstruction(
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new (&allocator_) HAdd(Primitive::kPrimInt, k, constant100_), 0);
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HInstruction *sub = InsertInstruction(
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new (&allocator_) HSub(Primitive::kPrimInt, k, constant100_), 0);
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HInstruction *mul = InsertInstruction(
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new (&allocator_) HMul(Primitive::kPrimInt, k, constant100_), 0);
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HInstruction *shl = InsertInstruction(
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new (&allocator_) HShl(Primitive::kPrimInt, k, constant1_), 0);
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HInstruction *neg = InsertInstruction(
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new (&allocator_) HNeg(Primitive::kPrimInt, k), 0);
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k->AddInput(
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InsertInstruction(new (&allocator_) HShl(Primitive::kPrimInt, basic_[0], constant1_), 0));
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PerformInductionVarAnalysis();
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EXPECT_STREQ("wrap((100), ((2) * i + (100)):PrimInt):PrimInt",
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GetInductionInfo(add, 0).c_str());
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EXPECT_STREQ("wrap(((0) - (100)), ((2) * i + ((0) - (100))):PrimInt):PrimInt",
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GetInductionInfo(sub, 0).c_str());
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EXPECT_STREQ("wrap((0), (((2) * (100)) * i + (0)):PrimInt):PrimInt",
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GetInductionInfo(mul, 0).c_str());
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EXPECT_STREQ("wrap((0), (((2) * (2)) * i + (0)):PrimInt):PrimInt",
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GetInductionInfo(shl, 0).c_str());
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EXPECT_STREQ("wrap((0), (( - (2)) * i + (0)):PrimInt):PrimInt",
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GetInductionInfo(neg, 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, FindPeriodicInduction) {
|
|
// Setup:
|
|
// k = 0;
|
|
// t = 100;
|
|
// for (int i = 0; i < 100; i++) {
|
|
// a[k] = 0;
|
|
// a[t] = 0;
|
|
// // Swap t <-> k.
|
|
// d = t;
|
|
// t = k;
|
|
// k = d;
|
|
// }
|
|
BuildLoopNest(1);
|
|
HPhi* k = InsertLoopPhi(0, 0);
|
|
k->AddInput(constant0_);
|
|
HPhi* t = InsertLoopPhi(1, 0);
|
|
t->AddInput(constant100_);
|
|
|
|
HInstruction* store1 = InsertArrayStore(k, 0);
|
|
HInstruction* store2 = InsertArrayStore(t, 0);
|
|
k->AddInput(t);
|
|
t->AddInput(k);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("periodic((0), (100)):PrimInt", GetInductionInfo(store1->InputAt(1), 0).c_str());
|
|
EXPECT_STREQ("periodic((100), (0)):PrimInt", GetInductionInfo(store2->InputAt(1), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, FindIdiomaticPeriodicInduction) {
|
|
// Setup:
|
|
// k = 0;
|
|
// for (int i = 0; i < 100; i++) {
|
|
// a[k] = 0;
|
|
// k = 1 - k;
|
|
// }
|
|
BuildLoopNest(1);
|
|
HPhi* k = InsertLoopPhi(0, 0);
|
|
k->AddInput(constant0_);
|
|
|
|
HInstruction* store = InsertArrayStore(k, 0);
|
|
HInstruction *sub = InsertInstruction(
|
|
new (&allocator_) HSub(Primitive::kPrimInt, constant1_, k), 0);
|
|
k->AddInput(sub);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("periodic((0), (1)):PrimInt", GetInductionInfo(store->InputAt(1), 0).c_str());
|
|
EXPECT_STREQ("periodic((1), (0)):PrimInt", GetInductionInfo(sub, 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, FindDerivedPeriodicInduction) {
|
|
// Setup:
|
|
// k = 0;
|
|
// for (int i = 0; i < 100; i++) {
|
|
// k = 1 - k;
|
|
// t = k + 100;
|
|
// t = k - 100;
|
|
// t = k * 100;
|
|
// t = k << 1;
|
|
// t = - k;
|
|
// }
|
|
BuildLoopNest(1);
|
|
HPhi* k_header = InsertLoopPhi(0, 0);
|
|
k_header->AddInput(constant0_);
|
|
|
|
HInstruction* k_body = InsertInstruction(
|
|
new (&allocator_) HSub(Primitive::kPrimInt, constant1_, k_header), 0);
|
|
k_header->AddInput(k_body);
|
|
|
|
// Derived expressions.
|
|
HInstruction *add = InsertInstruction(
|
|
new (&allocator_) HAdd(Primitive::kPrimInt, k_body, constant100_), 0);
|
|
HInstruction *sub = InsertInstruction(
|
|
new (&allocator_) HSub(Primitive::kPrimInt, k_body, constant100_), 0);
|
|
HInstruction *mul = InsertInstruction(
|
|
new (&allocator_) HMul(Primitive::kPrimInt, k_body, constant100_), 0);
|
|
HInstruction *shl = InsertInstruction(
|
|
new (&allocator_) HShl(Primitive::kPrimInt, k_body, constant1_), 0);
|
|
HInstruction *neg = InsertInstruction(
|
|
new (&allocator_) HNeg(Primitive::kPrimInt, k_body), 0);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("periodic(((1) + (100)), (100)):PrimInt", GetInductionInfo(add, 0).c_str());
|
|
EXPECT_STREQ("periodic(((1) - (100)), ((0) - (100))):PrimInt", GetInductionInfo(sub, 0).c_str());
|
|
EXPECT_STREQ("periodic((100), (0)):PrimInt", GetInductionInfo(mul, 0).c_str());
|
|
EXPECT_STREQ("periodic((2), (0)):PrimInt", GetInductionInfo(shl, 0).c_str());
|
|
EXPECT_STREQ("periodic(( - (1)), (0)):PrimInt", GetInductionInfo(neg, 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, FindDeepLoopInduction) {
|
|
// Setup:
|
|
// k = 0;
|
|
// for (int i_0 = 0; i_0 < 100; i_0++) {
|
|
// ..
|
|
// for (int i_9 = 0; i_9 < 100; i_9++) {
|
|
// k = 1 + k;
|
|
// a[k] = 0;
|
|
// }
|
|
// ..
|
|
// }
|
|
BuildLoopNest(10);
|
|
|
|
HPhi* k[10];
|
|
for (int d = 0; d < 10; d++) {
|
|
k[d] = InsertLoopPhi(0, d);
|
|
}
|
|
|
|
HInstruction *inc = InsertInstruction(
|
|
new (&allocator_) HAdd(Primitive::kPrimInt, constant1_, k[9]), 9);
|
|
HInstruction* store = InsertArrayStore(inc, 9);
|
|
|
|
for (int d = 0; d < 10; d++) {
|
|
k[d]->AddInput((d != 0) ? k[d - 1] : constant0_);
|
|
k[d]->AddInput((d != 9) ? k[d + 1] : inc);
|
|
}
|
|
PerformInductionVarAnalysis();
|
|
|
|
// Avoid exact phi number, since that depends on the SSA building phase.
|
|
std::regex r("\\(\\(1\\) \\* i \\+ "
|
|
"\\(\\(1\\) \\+ \\(\\d+:Phi\\)\\)\\):PrimInt");
|
|
|
|
for (int d = 0; d < 10; d++) {
|
|
if (d == 9) {
|
|
EXPECT_TRUE(std::regex_match(GetInductionInfo(store->InputAt(1), d), r));
|
|
} else {
|
|
EXPECT_STREQ("", GetInductionInfo(store->InputAt(1), d).c_str());
|
|
}
|
|
EXPECT_STREQ("((1) * i + (1)):PrimInt", GetInductionInfo(increment_[d], d).c_str());
|
|
// Trip-count.
|
|
EXPECT_STREQ("((100) (TC-loop) ((0) < (100)))",
|
|
GetInductionInfo(loop_header_[d]->GetLastInstruction(), d).c_str());
|
|
}
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, ByteInductionIntLoopControl) {
|
|
// Setup:
|
|
// for (int i = 0; i < 100; i++) {
|
|
// k = (byte) i;
|
|
// a[k] = 0;
|
|
// a[i] = 0;
|
|
// }
|
|
BuildLoopNest(1);
|
|
HInstruction *conv = InsertInstruction(
|
|
new (&allocator_) HTypeConversion(Primitive::kPrimByte, basic_[0], -1), 0);
|
|
HInstruction* store1 = InsertArrayStore(conv, 0);
|
|
HInstruction* store2 = InsertArrayStore(basic_[0], 0);
|
|
PerformInductionVarAnalysis();
|
|
|
|
// Regular int induction (i) is "transferred" over conversion into byte induction (k).
|
|
EXPECT_STREQ("((1) * i + (0)):PrimByte", GetInductionInfo(store1->InputAt(1), 0).c_str());
|
|
EXPECT_STREQ("((1) * i + (0)):PrimInt", GetInductionInfo(store2->InputAt(1), 0).c_str());
|
|
EXPECT_STREQ("((1) * i + (1)):PrimInt", GetInductionInfo(increment_[0], 0).c_str());
|
|
|
|
// Type matters!
|
|
EXPECT_FALSE(HaveSameInduction(store1->InputAt(1), store2->InputAt(1)));
|
|
|
|
// Trip-count.
|
|
EXPECT_STREQ("((100) (TC-loop) ((0) < (100)))",
|
|
GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, ByteLoopControl1) {
|
|
// Setup:
|
|
// for (byte i = -128; i < 127; i++) { // just fits!
|
|
// }
|
|
BuildLoopNest(1);
|
|
basic_[0]->ReplaceInput(graph_->GetIntConstant(-128), 0);
|
|
HInstruction* ifs = loop_header_[0]->GetLastInstruction()->GetPrevious();
|
|
ifs->ReplaceInput(graph_->GetIntConstant(127), 1);
|
|
HInstruction* conv = new(&allocator_) HTypeConversion(Primitive::kPrimByte, increment_[0], -1);
|
|
loop_body_[0]->InsertInstructionBefore(conv, increment_[0]->GetNext());
|
|
basic_[0]->ReplaceInput(conv, 1);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("((1) * i + ((-128) + (1))):PrimByte", GetInductionInfo(increment_[0], 0).c_str());
|
|
// Trip-count.
|
|
EXPECT_STREQ("(((127) - (-128)) (TC-loop) ((-128) < (127)))",
|
|
GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, ByteLoopControl2) {
|
|
// Setup:
|
|
// for (byte i = -128; i < 128; i++) { // infinite loop!
|
|
// }
|
|
BuildLoopNest(1);
|
|
basic_[0]->ReplaceInput(graph_->GetIntConstant(-128), 0);
|
|
HInstruction* ifs = loop_header_[0]->GetLastInstruction()->GetPrevious();
|
|
ifs->ReplaceInput(graph_->GetIntConstant(128), 1);
|
|
HInstruction* conv = new(&allocator_) HTypeConversion(Primitive::kPrimByte, increment_[0], -1);
|
|
loop_body_[0]->InsertInstructionBefore(conv, increment_[0]->GetNext());
|
|
basic_[0]->ReplaceInput(conv, 1);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("((1) * i + ((-128) + (1))):PrimByte", GetInductionInfo(increment_[0], 0).c_str());
|
|
// Trip-count undefined.
|
|
EXPECT_STREQ("", GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, ShortLoopControl1) {
|
|
// Setup:
|
|
// for (short i = -32768; i < 32767; i++) { // just fits!
|
|
// }
|
|
BuildLoopNest(1);
|
|
basic_[0]->ReplaceInput(graph_->GetIntConstant(-32768), 0);
|
|
HInstruction* ifs = loop_header_[0]->GetLastInstruction()->GetPrevious();
|
|
ifs->ReplaceInput(graph_->GetIntConstant(32767), 1);
|
|
HInstruction* conv = new(&allocator_) HTypeConversion(Primitive::kPrimShort, increment_[0], -1);
|
|
loop_body_[0]->InsertInstructionBefore(conv, increment_[0]->GetNext());
|
|
basic_[0]->ReplaceInput(conv, 1);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("((1) * i + ((-32768) + (1))):PrimShort",
|
|
GetInductionInfo(increment_[0], 0).c_str());
|
|
// Trip-count.
|
|
EXPECT_STREQ("(((32767) - (-32768)) (TC-loop) ((-32768) < (32767)))",
|
|
GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, ShortLoopControl2) {
|
|
// Setup:
|
|
// for (short i = -32768; i < 32768; i++) { // infinite loop!
|
|
// }
|
|
BuildLoopNest(1);
|
|
basic_[0]->ReplaceInput(graph_->GetIntConstant(-32768), 0);
|
|
HInstruction* ifs = loop_header_[0]->GetLastInstruction()->GetPrevious();
|
|
ifs->ReplaceInput(graph_->GetIntConstant(32768), 1);
|
|
HInstruction* conv = new(&allocator_) HTypeConversion(Primitive::kPrimShort, increment_[0], -1);
|
|
loop_body_[0]->InsertInstructionBefore(conv, increment_[0]->GetNext());
|
|
basic_[0]->ReplaceInput(conv, 1);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("((1) * i + ((-32768) + (1))):PrimShort",
|
|
GetInductionInfo(increment_[0], 0).c_str());
|
|
// Trip-count undefined.
|
|
EXPECT_STREQ("", GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, CharLoopControl1) {
|
|
// Setup:
|
|
// for (char i = 0; i < 65535; i++) { // just fits!
|
|
// }
|
|
BuildLoopNest(1);
|
|
HInstruction* ifs = loop_header_[0]->GetLastInstruction()->GetPrevious();
|
|
ifs->ReplaceInput(graph_->GetIntConstant(65535), 1);
|
|
HInstruction* conv = new(&allocator_) HTypeConversion(Primitive::kPrimChar, increment_[0], -1);
|
|
loop_body_[0]->InsertInstructionBefore(conv, increment_[0]->GetNext());
|
|
basic_[0]->ReplaceInput(conv, 1);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("((1) * i + (1)):PrimChar", GetInductionInfo(increment_[0], 0).c_str());
|
|
// Trip-count.
|
|
EXPECT_STREQ("((65535) (TC-loop) ((0) < (65535)))",
|
|
GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
TEST_F(InductionVarAnalysisTest, CharLoopControl2) {
|
|
// Setup:
|
|
// for (char i = 0; i < 65536; i++) { // infinite loop!
|
|
// }
|
|
BuildLoopNest(1);
|
|
HInstruction* ifs = loop_header_[0]->GetLastInstruction()->GetPrevious();
|
|
ifs->ReplaceInput(graph_->GetIntConstant(65536), 1);
|
|
HInstruction* conv = new(&allocator_) HTypeConversion(Primitive::kPrimChar, increment_[0], -1);
|
|
loop_body_[0]->InsertInstructionBefore(conv, increment_[0]->GetNext());
|
|
basic_[0]->ReplaceInput(conv, 1);
|
|
PerformInductionVarAnalysis();
|
|
|
|
EXPECT_STREQ("((1) * i + (1)):PrimChar", GetInductionInfo(increment_[0], 0).c_str());
|
|
// Trip-count undefined.
|
|
EXPECT_STREQ("", GetInductionInfo(loop_header_[0]->GetLastInstruction(), 0).c_str());
|
|
}
|
|
|
|
} // namespace art
|