Fuzzy modelling and cost optimization of fault-tolerant system with service interruption

IF 6.3 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS ISA transactions Pub Date : 2025-02-01 DOI:10.1016/j.isatra.2024.12.006
Vijay Pratap Singh , Madhu Jain , Rakesh Kumar Meena , Pankaj Kumar
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Abstract

Redundancy and maintainability-supported fault-tolerant machining systems are used in many industries to achieve pre-specified reliability and system capability. In this investigation, a non-Markov model for the machining system has been developed by involving the concepts of server vacation, server breakdown, and reboot process. The server may fail and undergo primary repair which may be unsuccessful in recovering the server. In case of imperfect server repair, an additional repair is also performed to bring the server back into functional mode. By using the supplementary variable for the residual repair, we obtain the analytic solution of the finite population M/G/1 queueing model for the performance prediction of FTMS. The method of parametric non-linear programming has been implemented to evaluate the performance measures in both crisp and fuzzy environments. The meta-heuristic approaches PSO, GA and classical optimization technique quasi-Newton method are employed to determine the optimal design descriptors by minimizing the total cost. The sensitivity of performance indices with respect to system parameters has been examined for the specific repair time distributions by taking illustrations.
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服务中断容错系统的模糊建模与成本优化。
冗余和可维护性支持的容错加工系统在许多行业中被用于实现预先指定的可靠性和系统能力。在本研究中,建立了一个涉及服务器休假、服务器故障和重新启动过程的非马尔可夫加工系统模型。服务器可能会失败并进行主要修复,这可能无法恢复服务器。如果服务器修复不完美,还会执行额外的修复以使服务器恢复到功能模式。利用残差修复的补充变量,得到了用于FTMS性能预测的有限种群M/G/1排队模型的解析解。采用参数非线性规划的方法对清晰和模糊环境下的性能指标进行了评价。采用元启发式方法粒子群算法、遗传算法和经典优化技术拟牛顿法以最小化总成本为目标确定最优设计描述符。通过实例分析了具体维修时间分布下的性能指标对系统参数的敏感性。
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来源期刊
ISA transactions
ISA transactions 工程技术-工程:综合
CiteScore
11.70
自引率
12.30%
发文量
824
审稿时长
4.4 months
期刊介绍: ISA Transactions serves as a platform for showcasing advancements in measurement and automation, catering to both industrial practitioners and applied researchers. It covers a wide array of topics within measurement, including sensors, signal processing, data analysis, and fault detection, supported by techniques such as artificial intelligence and communication systems. Automation topics encompass control strategies, modelling, system reliability, and maintenance, alongside optimization and human-machine interaction. The journal targets research and development professionals in control systems, process instrumentation, and automation from academia and industry.
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