Efficient Approaches for Solving a Multiobjective Energy-aware Job Shop Scheduling Problem

被引:4
|
作者
Gonzalez, Miguel A. [1 ]
Oddi, Angelo [2 ]
Rasconi, Riccardo [2 ]
机构
[1] Univ Oviedo, Dept Comp, Campus Gijon, Gijon 33203, Spain
[2] ISTC CNR, Via San Martino della Battaglia 44, I-00185 Rome, Italy
关键词
Multiobjective optimization; job shop; energy; metaheuristics; TOTAL WEIGHTED TARDINESS; TOTAL COMPLETION-TIME; GENETIC ALGORITHM; LOCAL SEARCH; POWER-CONSUMPTION; NEIGHBORHOOD STRUCTURES; EVOLUTIONARY ALGORITHM; CARBON FOOTPRINT; OPTIMIZATION; CONSTRAINT;
D O I
10.3233/FI-2019-1811
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
One of the most recent and interesting trends in intelligent scheduling is trying to reduce the energy consumption in order to obtain lower production costs and smaller carbon foot-print. In this work we consider the energy-aware job shop scheduling problem, where we have to minimize at the same time an efficiency-based objective, as is the total weighted tardiness, and also the overall energy consumption. We experimentally show that we can reduce the energy consumption of a given schedule by delaying some operations, and to this end we design a heuristic procedure to improve a given schedule. As the problem is computationally complex, we design three approaches to solve it: a Pareto-based multiobjective evolutionary algorithm, which is hybridized with a multiobjective local search method and a linear programming step, a decomposition-based multiobjective evolutionary algorithm hybridized with a single-objective local search method, and finally a constraint programming approach. We perform an extensive experimental study to analyze our algorithms and to compare them with the state of the art.
引用
收藏
页码:93 / 132
页数:40
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