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A scheduling algorithm based on the singular value decomposition heuristic method in a distributed manufacturing system

机译:分布式制造系统中基于奇异值分解启发式算法的调度算法

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摘要

Because distributed manufacturing technology is the foundation of modernized production and traditional heuristic methods exhibit problems of high complexity and low efficiency, this paper designs a scheduling algorithm based on the singular value decomposition heuristic (SVDH) method. The algorithm uses the device distribution and the transportation relationship between devices in a distributed manufacturing system. The algorithm takes the sequence relationship between tasks and the distance between devices as the implicit relationship between the task and the device. The algorithm makes use of the implicit relationship to amend the processing time matrix of the task and corrects the processing time matrix that contains the transportation relationship. Singular value decomposition principal component analysis is performed on the corrected processing time to find the most suitable processing device for each process, and an initial solution matrix is established. The heuristic solution is used to optimize the initial solution to find the optimal scheduling result based on the initial solution matrix. The establishment of the initial solution can effectively reduce the computational complexity of the heuristic solution, realize a parallelizing solution, and improve the efficiency of the heuristic solutions. In addition, the SVDH scheduling result has a lower transfer time between devices due to the consideration of the topology of tasks and devices, that is, the transit time. In this paper, the experiments are conducted on the heuristic performance, scheduling results, and transportation time. The experimental results show the advantages of SVDH over general heuristic algorithms in terms of efficiency and transit time.
机译:由于分布式制造技术是现代化生产的基础,传统的启发式方法存在复杂性高,效率低的问题,因此本文设计了一种基于奇异值分解启发式(SVDH)方法的调度算法。该算法使用设备分布以及分布式制造系统中设备之间的运输关系。该算法将任务之间的顺序关系和设备之间的距离视为任务和设备之间的隐式关系。该算法利用隐式关系来修改任务的处理时间矩阵,并对包含运输关系的处理时间矩阵进行校正。对校正后的处理时间进行奇异值分解主成分分析,以找到每个过程最合适的处理设备,并建立初始解矩阵。启发式解决方案用于优化初始解决方案,以基于初始解决方案矩阵找到最佳调度结果。初始解的建立可以有效降低启发式解决方案的计算复杂度,实现并行化解决方案,并提高启发式解决方案的效率。此外,由于考虑了任务和设备的拓扑,因此SVDH调度结果在设备之间的传输时间较短,即传输时间。本文对启发式性能,调度结果和运输时间进行了实验。实验结果表明,在效率和传输时间方面,SVDH优于常规启发式算法。

著录项

  • 来源
    《Expert Systems》 |2019年第4期|e12433.1-e12433.16|共16页
  • 作者

    Shao Xia; Xin Yu;

  • 作者单位

    North China Univ Water Resources & Elect Power, Coll Informat Engn, Zhengzhou, Henan, Peoples R China;

    Harbin Univ Sci & Technol, Sch Comp Sci & Technol, Harbin 150080, Heilongjiang, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    device network; distributed manufacturing; heuristic method; singular value;

    机译:设备网络;分布式制造;启发式方法;奇异值;

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