Data-Based Identification Method for Jobshop Scheduling Problems Using Timed Petri Nets

T. Nishi, Naoki Shimamura
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Abstract

We address a data-based identification method of machine scheduling problems using timed Petri nets. A general machine scheduling model is represented by timed Petri nets with resource places. Given a set of machines and jobs, and their starting times and completion times of several machines, the objective is to find resource constraints of a given machine scheduling problem from input and output data. The problem is to find the connectivity of each resource place in the operational places. A mixed integer linear programming model is formulated to find an optimal connectivity of resource places to minimize the mean square error of the input and output data. An approximation algorithm is developed to apply larger instances. Numerical examples are provided to show the effectiveness of the proposed approximation algorithm.
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基于数据的作业车间调度问题定时Petri网识别方法
利用定时Petri网,提出了一种基于数据的机器调度问题识别方法。一个通用的机器调度模型用带资源位置的定时Petri网表示。给定一组机器和作业,以及它们的开始时间和几台机器的完成时间,目标是从输入和输出数据中找到给定机器调度问题的资源约束。问题是找到每个资源位置在操作位置的连通性。建立了一个混合整数线性规划模型,以求得资源位置的最优连通性,使输入和输出数据的均方误差最小。提出了一种适用于较大实例的近似算法。数值算例表明了所提近似算法的有效性。
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