一种基于模糊语言偏好的层次分析法和模糊COPRAS的机床评估集成方法。
An Integrated Approach of Fuzzy Linguistic Preference Based AHP and Fuzzy COPRAS for Machine Tool Evaluation.
作者信息
Nguyen Huu-Tho, Md Dawal Siti Zawiah, Nukman Yusoff, Aoyama Hideki, Case Keith
机构信息
Department of Mechanical Engineering, Faculty of Engineering, University of Malaya, 50603, Kuala Lumpur, Malaysia.
School of Integrated Design Engineering, Keio University, Tokyo, Japan.
出版信息
PLoS One. 2015 Sep 14;10(9):e0133599. doi: 10.1371/journal.pone.0133599. eCollection 2015.
Globalization of business and competitiveness in manufacturing has forced companies to improve their manufacturing facilities to respond to market requirements. Machine tool evaluation involves an essential decision using imprecise and vague information, and plays a major role to improve the productivity and flexibility in manufacturing. The aim of this study is to present an integrated approach for decision-making in machine tool selection. This paper is focused on the integration of a consistent fuzzy AHP (Analytic Hierarchy Process) and a fuzzy COmplex PRoportional ASsessment (COPRAS) for multi-attribute decision-making in selecting the most suitable machine tool. In this method, the fuzzy linguistic reference relation is integrated into AHP to handle the imprecise and vague information, and to simplify the data collection for the pair-wise comparison matrix of the AHP which determines the weights of attributes. The output of the fuzzy AHP is imported into the fuzzy COPRAS method for ranking alternatives through the closeness coefficient. Presentation of the proposed model application is provided by a numerical example based on the collection of data by questionnaire and from the literature. The results highlight the integration of the improved fuzzy AHP and the fuzzy COPRAS as a precise tool and provide effective multi-attribute decision-making for evaluating the machine tool in the uncertain environment.
商业全球化和制造业的竞争力迫使企业改进其制造设施以满足市场需求。机床评估涉及使用不精确和模糊信息的关键决策,并在提高制造业的生产率和灵活性方面发挥着重要作用。本研究的目的是提出一种用于机床选择决策的综合方法。本文重点在于将一致模糊层次分析法(AHP)和模糊复杂比例评估法(COPRAS)集成起来,用于多属性决策以选择最合适的机床。在该方法中,模糊语言参考关系被集成到层次分析法中,以处理不精确和模糊的信息,并简化层次分析法中确定属性权重的成对比较矩阵的数据收集。模糊层次分析法的输出被导入到模糊复杂比例评估法中,通过贴近度系数对备选方案进行排序。基于问卷调查收集的数据和文献中的数据,通过一个数值例子展示了所提出模型的应用。结果突出了改进的模糊层次分析法和模糊复杂比例评估法集成作为一种精确工具的作用,并为在不确定环境下评估机床提供了有效的多属性决策。
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PLoS One. 2017-5-12