2021-04-02 10:08:51 +02:00
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# Copyright 2010-2021 Google LLC
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2011-11-03 10:27:53 +00:00
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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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"""Integer programming examples that show how to use the APIs."""
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2013-12-24 11:35:01 +00:00
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from ortools.linear_solver import pywraplp
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2021-03-26 15:32:29 +01:00
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from ortools.init import pywrapinit
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2011-11-03 10:27:53 +00:00
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2020-06-24 18:11:12 +02:00
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def Announce(solver, api_type):
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print('---- Integer programming example with ' + solver + ' (' + api_type +
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') -----')
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2011-12-05 14:15:20 +00:00
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def RunIntegerExampleNaturalLanguageAPI(optimization_problem_type):
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2018-11-11 09:39:59 +01:00
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"""Example of simple integer program with natural language API."""
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2020-06-24 18:11:12 +02:00
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2020-08-18 17:16:10 +02:00
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solver = pywraplp.Solver.CreateSolver(optimization_problem_type)
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2020-06-24 18:11:12 +02:00
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if not solver:
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return
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Announce(optimization_problem_type, 'natural language API')
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2018-11-11 09:39:59 +01:00
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infinity = solver.infinity()
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# x1 and x2 are integer non-negative variables.
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x1 = solver.IntVar(0.0, infinity, 'x1')
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x2 = solver.IntVar(0.0, infinity, 'x2')
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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solver.Minimize(x1 + 2 * x2)
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solver.Add(3 * x1 + 2 * x2 >= 17)
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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SolveAndPrint(solver, [x1, x2])
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2011-11-03 10:27:53 +00:00
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def RunIntegerExampleCppStyleAPI(optimization_problem_type):
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2018-11-11 09:39:59 +01:00
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"""Example of simple integer program with the C++ style API."""
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2020-08-18 17:16:10 +02:00
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solver = pywraplp.Solver.CreateSolver(optimization_problem_type)
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2020-06-24 18:11:12 +02:00
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if not solver:
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return
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Announce(optimization_problem_type, 'C++ style API')
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2018-11-11 09:39:59 +01:00
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infinity = solver.infinity()
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# x1 and x2 are integer non-negative variables.
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x1 = solver.IntVar(0.0, infinity, 'x1')
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x2 = solver.IntVar(0.0, infinity, 'x2')
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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# Minimize x1 + 2 * x2.
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objective = solver.Objective()
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objective.SetCoefficient(x1, 1)
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objective.SetCoefficient(x2, 2)
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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# 2 * x2 + 3 * x1 >= 17.
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ct = solver.Constraint(17, infinity)
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ct.SetCoefficient(x1, 3)
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ct.SetCoefficient(x2, 2)
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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SolveAndPrint(solver, [x1, x2])
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2011-11-03 10:27:53 +00:00
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def SolveAndPrint(solver, variable_list):
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"""Solve the problem and print the solution."""
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2019-05-06 10:31:03 +02:00
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print('Number of variables = %d' % solver.NumVariables())
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print('Number of constraints = %d' % solver.NumConstraints())
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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result_status = solver.Solve()
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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# The problem has an optimal solution.
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assert result_status == pywraplp.Solver.OPTIMAL
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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# The solution looks legit (when using solvers others than
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# GLOP_LINEAR_PROGRAMMING, verifying the solution is highly recommended!).
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assert solver.VerifySolution(1e-7, True)
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2014-07-09 11:17:29 +00:00
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2019-05-06 10:31:03 +02:00
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print('Problem solved in %f milliseconds' % solver.wall_time())
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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# The objective value of the solution.
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2019-05-06 10:31:03 +02:00
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print('Optimal objective value = %f' % solver.Objective().Value())
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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# The value of each variable in the solution.
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for variable in variable_list:
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print('%s = %f' % (variable.name(), variable.solution_value()))
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2011-11-03 10:27:53 +00:00
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2018-11-11 09:39:59 +01:00
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print('Advanced usage:')
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2019-05-06 10:31:03 +02:00
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print('Problem solved in %d branch-and-bound nodes' % solver.nodes())
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2011-11-03 10:27:53 +00:00
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2011-12-05 14:15:20 +00:00
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def RunAllIntegerExampleNaturalLanguageAPI():
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2020-06-24 18:11:12 +02:00
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RunIntegerExampleNaturalLanguageAPI('GLPK')
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RunIntegerExampleNaturalLanguageAPI('CBC')
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RunIntegerExampleNaturalLanguageAPI('SCIP')
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RunIntegerExampleNaturalLanguageAPI('SAT')
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2021-03-23 19:26:56 +01:00
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RunIntegerExampleNaturalLanguageAPI('Gurobi')
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2011-11-03 10:27:53 +00:00
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def RunAllIntegerExampleCppStyleAPI():
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RunIntegerExampleCppStyleAPI('GLPK')
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RunIntegerExampleCppStyleAPI('CBC')
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RunIntegerExampleCppStyleAPI('SCIP')
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RunIntegerExampleCppStyleAPI('SAT')
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RunIntegerExampleCppStyleAPI('Gurobi')
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2011-11-03 10:27:53 +00:00
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2015-12-09 14:56:52 +01:00
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def main():
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2018-11-11 09:39:59 +01:00
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RunAllIntegerExampleNaturalLanguageAPI()
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RunAllIntegerExampleCppStyleAPI()
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2011-11-03 10:27:53 +00:00
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if __name__ == '__main__':
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2021-03-26 15:32:29 +01:00
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pywrapinit.CppBridge.InitLogging('integer_programming.py')
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cpp_flags = pywrapinit.CppFlags()
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2021-03-24 09:54:39 +01:00
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cpp_flags.logtostderr = True
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cpp_flags.log_prefix = False
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pywrapinit.CppBridge.SetFlags(cpp_flags)
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main()
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