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Application of knowledge-based artificial immune system (KBAIS) for computer aided process planning in CIM context

机译:基于知识的人工免疫系统(KBAIS)在CIM环境下的计算机辅助过程规划中的应用

摘要

In the present era, several manufacturing philosophies like lean manufacturing, total quality management (TQM), etc., have the goal of providing a quality product at reduced cost. In this research paper the process planning problem of a CIM system has been discussed where minimisation of cost of the finished product is considered as the main objective. For determining the cost of the finished product, scrap cost, forgotten by most of the previous researchers, has been considered along with other costs like raw material cost, processing cost, etc. In the present environment of concurrent engineering, optimisation of process planning is an NPhard problem. To solve this complex problem a noble search algorithm, known as knowledge-based artificial immune system (KBAIS) has been proposed. The nobility of the proposed algorithm is that the inherent capability of AIS has been gleaned and incorporated with the property of the knowledge base. In this problem, the power of knowledge has been used for three stages in the algorithm: initialisation, selection and hyper-mutation. To demonstrate the efficacy of the proposed KBAIS, a bench mark problem has been considered. Intensive computational experiments have also been performed on randomly generated datasets to reveal the supremacy of the proposed algorithm over other existing heuristics.
机译:在当今时代,精益制造,全面质量管理(TQM)等几种制造理念的目标是以降低的成本提供优质的产品。在这篇研究论文中,已经讨论了以成品成本最小化为主要目标的CIM系统的过程计划问题。为了确定最终产品的成本,已经考虑了大多数先前研究人员遗忘的废料成本以及其他成本,例如原材料成本,加工成本等。在并行工程的当前环境中,过程计划的优化是NPhard问题。为了解决这个复杂的问题,提出了一种称为基于知识的人工免疫系统(KBAIS)的高贵搜索算法。所提出算法的高贵之处在于AIS的固有能力已被收集并与知识库的属性结合在一起。在这个问题中,知识的力量已在算法的三个阶段使用:初始化,选择和超突变。为了证明所提出的KBAIS的有效性,已经考虑了基准问题。还对随机生成的数据集进行了密集的计算实验,以揭示该算法在其他现有启发式算法上的优势。

著录项

  • 作者

    Prakash A; Chan FTS; Deshmukh SG;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 入库时间 2022-08-20 20:56:14

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