note: done using ```sh git grep -l "2010-2024 Google" | xargs sed -i 's/2010-2024 Google/2010-2025 Google/' ```
166 lines
5.9 KiB
C++
166 lines
5.9 KiB
C++
// Copyright 2010-2025 Google LLC
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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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#include "ortools/sat/optimization.h"
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#include <stdint.h>
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#include <functional>
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#include <vector>
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#include "gtest/gtest.h"
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#include "ortools/base/gmock.h"
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#include "ortools/sat/boolean_problem.pb.h"
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#include "ortools/sat/integer.h"
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#include "ortools/sat/integer_base.h"
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#include "ortools/sat/integer_search.h"
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#include "ortools/sat/model.h"
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#include "ortools/sat/pb_constraint.h"
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#include "ortools/sat/sat_base.h"
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#include "ortools/sat/sat_parameters.pb.h"
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#include "ortools/sat/sat_solver.h"
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namespace operations_research {
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namespace sat {
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namespace {
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using ::testing::ElementsAre;
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// Test the lazy encoding logic on a trivial problem.
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TEST(MinimizeIntegerVariableWithLinearScanAndLazyEncodingTest, BasicProblem) {
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Model model;
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IntegerVariable var = model.Add(NewIntegerVariable(-5, 10));
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model.GetOrCreate<SearchHeuristics>()->fixed_search =
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FirstUnassignedVarAtItsMinHeuristic({var}, &model);
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ConfigureSearchHeuristics(&model);
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int num_feasible_solution = 0;
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SatSolver::Status status =
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MinimizeIntegerVariableWithLinearScanAndLazyEncoding(
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var,
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/*feasible_solution_observer=*/
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[var, &num_feasible_solution, &model]() {
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++num_feasible_solution;
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EXPECT_EQ(model.Get(Value(var)), -5);
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},
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&model);
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EXPECT_EQ(num_feasible_solution, 1);
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EXPECT_EQ(status, SatSolver::Status::INFEASIBLE); // Search done.
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}
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TEST(MinimizeIntegerVariableWithLinearScanAndLazyEncodingTest,
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BasicProblemWithSolutionLimit) {
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Model model;
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SatParameters* parameters = model.GetOrCreate<SatParameters>();
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parameters->set_stop_after_first_solution(true);
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IntegerVariable var = model.Add(NewIntegerVariable(-5, 10));
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model.GetOrCreate<SearchHeuristics>()->fixed_search =
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FirstUnassignedVarAtItsMinHeuristic({var}, &model);
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ConfigureSearchHeuristics(&model);
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SatSolver::Status status =
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MinimizeIntegerVariableWithLinearScanAndLazyEncoding(
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var,
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/*feasible_solution_observer=*/
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[var, &model]() { EXPECT_EQ(model.Get(Value(var)), -5); }, &model);
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EXPECT_EQ(status, SatSolver::Status::LIMIT_REACHED);
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}
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TEST(MinimizeIntegerVariableWithLinearScanAndLazyEncodingTest,
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BasicProblemWithBadHeuristic) {
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Model model;
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IntegerVariable var = model.Add(NewIntegerVariable(-5, 10));
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int expected_value = 10;
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int num_feasible_solution = 0;
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model.GetOrCreate<SearchHeuristics>()->fixed_search =
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FirstUnassignedVarAtItsMinHeuristic({NegationOf(var)}, &model);
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ConfigureSearchHeuristics(&model);
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SatSolver::Status status =
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MinimizeIntegerVariableWithLinearScanAndLazyEncoding(
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var,
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/*feasible_solution_observer=*/
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[&]() {
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++num_feasible_solution;
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EXPECT_EQ(model.Get(Value(var)), expected_value--);
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},
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&model);
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EXPECT_EQ(num_feasible_solution, 16);
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EXPECT_EQ(status, SatSolver::Status::INFEASIBLE); // Search done.
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}
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// TODO(user): The core find the best solution right away here, so it doesn't
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// really exercise the solution limit...
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TEST(MinimizeWithCoreAndLazyEncodingTest, BasicProblemWithSolutionLimit) {
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Model model;
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SatParameters* parameters = model.GetOrCreate<SatParameters>();
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parameters->set_stop_after_first_solution(true);
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IntegerVariable var = model.Add(NewIntegerVariable(-5, 10));
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std::vector<IntegerVariable> vars = {var};
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std::vector<IntegerValue> coeffs = {IntegerValue(1)};
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model.GetOrCreate<SearchHeuristics>()->fixed_search =
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FirstUnassignedVarAtItsMinHeuristic({var}, &model);
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ConfigureSearchHeuristics(&model);
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int num_solutions = 0;
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CoreBasedOptimizer core(
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var, vars, coeffs,
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/*feasible_solution_observer=*/
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[var, &model, &num_solutions]() {
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++num_solutions;
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EXPECT_EQ(model.Get(Value(var)), -5);
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},
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&model);
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SatSolver::Status status = core.Optimize();
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EXPECT_EQ(status, SatSolver::Status::INFEASIBLE); // i.e. optimal.
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EXPECT_EQ(1, num_solutions);
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}
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TEST(PresolveBooleanLinearExpressionTest, NegateCoeff) {
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Coefficient offset(0);
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std::vector<Literal> literals = Literals({+1});
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std::vector<Coefficient> coefficients = {Coefficient(-3)};
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PresolveBooleanLinearExpression(&literals, &coefficients, &offset);
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EXPECT_THAT(literals, ElementsAre(Literal(-1)));
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EXPECT_THAT(coefficients, ElementsAre(Coefficient(3)));
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EXPECT_EQ(offset, -3);
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}
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TEST(PresolveBooleanLinearExpressionTest, Duplicate) {
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Coefficient offset(0);
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std::vector<Literal> literals = Literals({+1, -4, +1});
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std::vector<Coefficient> coefficients = {Coefficient(-3), Coefficient(7),
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Coefficient(5)};
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PresolveBooleanLinearExpression(&literals, &coefficients, &offset);
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EXPECT_THAT(literals, ElementsAre(Literal(+1), Literal(-4)));
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EXPECT_THAT(coefficients, ElementsAre(Coefficient(2), Coefficient(7)));
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EXPECT_EQ(offset, 0);
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}
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TEST(PresolveBooleanLinearExpressionTest, NegatedLiterals) {
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Coefficient offset(0);
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std::vector<Literal> literals = Literals({+1, -4, -1});
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std::vector<Coefficient> coefficients = {Coefficient(-3), Coefficient(7),
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Coefficient(-5)};
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PresolveBooleanLinearExpression(&literals, &coefficients, &offset);
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EXPECT_THAT(literals, ElementsAre(Literal(+1), Literal(-4)));
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EXPECT_THAT(coefficients, ElementsAre(Coefficient(2), Coefficient(7)));
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EXPECT_EQ(offset, -5);
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}
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} // namespace
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} // namespace sat
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} // namespace operations_research
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