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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Grey Relational Analysis for Hesitant Fuzzy Sets and Its Applications to Multiattribute Decision-Making
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Grey Relational Analysis for Hesitant Fuzzy Sets and Its Applications to Multiattribute Decision-Making

机译:犹豫模糊集的灰色关联分析及其在多属性决策中的应用

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Due to the superiority in expressing the uncertain and vague information, the hesitant fuzzy set (HFS) is regarded as an important tool to deal with multiattribute decision-making (MADM) problems. Quantitative and qualitative fuzzy measures have been proposed to solve such problems from different points. However, most of the existing information measures for HFSs are related to such fuzzy measures as distance, similarity, entropy, and correlation coefficients. The grey relational analysis is omitted. Besides, the existing grey relational analysis for HFSs only considers the range or distance between HFSs data which is only a partial measure of the HFSs. Therefore, in this paper, we improve the grey relational analysis for HFSs and explore a novel slope grey relational degree by considering another factor of HFSs data the slope. Further, we combine both the distance and slope factors of HFSs data to construct a synthetic grey relational degree that describes the closeness and variation tendency of HFSs simultaneously, greatly enriching the fuzzy measures of HFSs. Furthermore, with the help of the TOPSIS method, we develop the grey relational based MADM methodology to solve the HFSs MADM problems. Finally, combining with two practical MADM examples about energy policy selection and multisensor target recognition, we obtain the most desirable decision results. Compared with the previous methods, the validity, comprehensiveness, and discrimination of the proposed synthetic grey relational degree for HFSs are demonstrated in detail.
机译:由于表达不确定和模糊信息的优势,犹豫模糊集(HFS)被认为是处理多属性决策(MADM)问题的重要工具。已经提出了定量和定性的模糊度量来解决这些问题。但是,大多数现有的HFS信息度量都与诸如距离,相似度,熵和相关系数之类的模糊度量有关。灰色关联分析被省略。此外,现有的HFS的灰色关联分析仅考虑HFS数据之间的距离或距离,这只是HFS的部分度量。因此,在本文中,我们通过考虑HFSs数据坡度的另一个因素,改进了HFSs的灰色关联分析,并探索了一种新颖的边坡灰色关联度。此外,我们结合了HFSs数据的距离和斜率因子,构造了一个同时描述HFSs的接近度和变化趋势的综合灰色关联度,极大地丰富了HFSs的模糊测度。此外,借助TOPSIS方法,我们开发了基于灰色关联的MADM方法来解决HFS MADM问题。最后,结合有关能量策略选择和多传感器目标识别的两个实际MADM示例,我们获得了最理想的决策结果。与以前的方法相比,详细证明了所提出的HFS合成灰色关联度的有效性,全面性和可分辨性。

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