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作者机构:Fuzhou Univ Sch Decis Sci Inst Fujian 350116 Peoples R China Fuzhou Univ Minist Educ Key Lab Spatial Data Min & Informat Sharing Fuzhou Peoples R China
出 版 物:《APPLIED SOFT COMPUTING》 (应用软计算)
年 卷 期:2021年第108卷
页 面:107458-107458页
核心收录:
学科分类:08[工学] 0812[工学-计算机科学与技术(可授工学、理学学位)]
基 金:National Natural Science Foundation of China
主 题:Renewable energy sources Risk measurement model Large-scale group decision making technology Clustering model
摘 要:As one of the most effective ways to alleviate energy crisis and environmental pollution, the renewable energy sources (RESs) have received increasing attention. Different RESs enjoy different characteristics and are suitable for different scenarios, thus it is essential to evaluate them before installation. Due to the increasing complexity of reality, the RESs evaluation usually involves various risks and large-scale group decision makers. To manage these risks and decision makers, this paper proposes an interval type-2 fuzzy large-scale group risk evaluation method. First, the interval type-2 fuzzy sets (IT2FSs) are employed to encode the qualitative information provided by the decision makers. Then, a new clustering approach integrating consensus reaching model and risk measurement model is developed to manage the decision makers and enhance the evaluation efficiency. After the clustering process, the selection procedure is activated and an interval type-2 fuzzy centroid-based ranking method is presented to rank the candidate RESs. Finally, a case study in China is provided to illustrate the effectiveness of the proposed method and comparisons are also made to verify the advantages. (C) 2021 Elsevier B.V. All rights reserved.