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Improving Risk Evaluation in FMEA With Cloud Model and Hierarchical TOPSIS Method

机译:利用云模型和分层TOPSIS方法改进FMEA中的风险评估

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Failure mode and effect analysis (FMEA) is a prospective reliability analysis technique used in a wide range of industries for enhancing the safety and reliability of systems, products, processes, and services. However, the conventional FMEA method has been criticized for inherent drawbacks that limit effectiveness and applications. In this paper, a novel integrated FMEA model based on cloud model theory and hierarchical technique for order of preference by similarity to ideal solution (TOPSIS) method is developed to assess and rank the risk of failure modes. First, individual linguistic assessments of failure modes are converted into normal clouds. Then, FMEA team members' weights are calculated based on the subjective weighting information. Finally, the risk priority of failure modes is determined by using the cloud hierarchical TOPSIS. The newly proposed FMEA method combines the advantages of the cloud model in coping with fuzziness and randomness of linguistic assessments and the merits of hierarchical TOPSIS in solving complex decision making problems. Two empirical examples to illustrate the feasibility and effectiveness of the proposed FMEA are presented together with a comparison to existing methods.
机译:失效模式和影响分析(FMEA)是广泛应用于各行各业的前瞻性可靠性分析技术,旨在增强系统,产品,过程和服务的安全性和可靠性。但是,传统的FMEA方法因其固有的缺陷而受到批评,这些缺陷限制了有效性和应用范围。本文提出了一种基于云模型理论和层次技术的新型集成FMEA模型,用于通过与理想解决方案(TOPSIS)方法相似的优先顺序来评估和排序故障模式的风险。首先,将故障模式的单个语言评估转换为正常的云。然后,基于主观权重信息来计算FMEA团队成员的权重。最后,通过使用云分层TOPSIS确定故障模式的风险优先级。新提出的FMEA方法结合了云模型在应对语言评估的模糊性和随机性方面的优势,以及在解决复杂决策问题时分层TOPSIS的优点。提出了两个经验示例,以说明拟议FMEA的可行性和有效性,并与现有方法进行了比较。

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