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# MIPLearn: Extensible Framework for Learning-Enhanced Mixed-Integer Optimization
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# Copyright (C) 2020, UChicago Argonne, LLC. All rights reserved.
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# Released under the modified BSD license. See COPYING.md for more details.
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using Test
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using MIPLearn
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using CPLEX
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using Gurobi
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@testset "LearningSolver" begin
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for optimizer in [CPLEX.Optimizer, Gurobi.Optimizer]
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instance = KnapsackInstance([23., 26., 20., 18.],
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[505., 352., 458., 220.],
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67.0)
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model = instance.to_model()
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solver = LearningSolver(solver=JuMPSolver(optimizer=optimizer))
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stats = solver.solve(instance, model)
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@test stats["Lower bound"] == 1183.0
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@test stats["Upper bound"] == 1183.0
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@test stats["Sense"] == "max"
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@test stats["Wallclock time"] > 0
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# solution = solver.get_solution()
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# @test solution["x[1]"] == 1.0
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# @test solution["x[2]"] == 0.0
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# @test solution["x[3]"] == 1.0
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# @test solution["x[4]"] == 1.0
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#
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# stats = solver.solve_lp()
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# @test round(stats["Optimal value"], digits=3) == 1287.923
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#
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# solution = solver.get_solution()
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# @test round(solution["x[1]"], digits=3) == 1.000
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# @test round(solution["x[2]"], digits=3) == 0.923
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# @test round(solution["x[3]"], digits=3) == 1.000
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# @test round(solution["x[4]"], digits=3) == 0.000
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#
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# solver.fix(Dict(
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# "x[1]" => 1.0,
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# "x[2]" => 0.0,
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# "x[3]" => 0.0,
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# "x[4]" => 1.0,
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# ))
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# stats = solver.solve()
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# @test stats["Lower bound"] == 725.0
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# @test stats["Upper bound"] == 725.0
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end
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end
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