复q-Rung正形模糊集的相关Hamacher聚合算子及其应用

Wei-Hua Liu, Ling Li
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引用次数: 1

摘要

复q阶正形模糊集(Cq-ROFS)是处理复杂信息的有效工具之一。近年来,在Cq-ROFS环境下开发了多种多属性决策方法,如复杂直觉模糊集(CIFS)和复杂毕达哥拉斯模糊集(CPFS)。Cq-ROFS优于CIFs和CPFS,可以描述更大范围的不确定信息空间。因此,本文研究了基于Cq-ROFS的MADM。然而,决策专家可能有个人偏见。为了降低个体偏好对决策的影响,在Hamacher运算和依赖方法的基础上,提出了复q阶正形模糊集的依赖Hamacher聚合算子(Cq-ROFDHA)。操作者可以通过将较低的权重分配给有偏差的评估(过高或过低的值)和较高的权重分配给中间值来改善个人偏见。首先,介绍了Cq-ROFDHA的基本操作规则、评分函数、距离和性质。然后,我们将Cq-ROFDHA应用于在线健康社区的服务效用决策。最后,将其与其他聚集因子进行比较。结果表明,Cq-ROFDHA算子具有一致性和优越性。
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Dependent Hamacher Aggregation Operators for Complex q-Rung Orthopair Fuzzy Sets and Their Application
Complex q-rung orthopair fuzzy sets (Cq-ROFS) become one of the effective tools to deal with unresolved and complex information. In recent years, a variety of multi-attribute decision making(MADM) methods have been developed in the Cq-ROFS environment, such as complex intuitionistic fuzzy set (CIFS) and complex Pythagorean fuzzy sets(CPFS). Cq-ROFS is superior to CIFs and CPFS, which can describe a wider range of uncertain information spaces. Therefore, this paper studies MADM based on Cq-ROFS. However, decision making experts may have personal biases. In order to reduce the influence of individual preference on decision-making, the dependent Hamacher aggregation operators for Complex q-rung orthopair fuzzy sets(Cq-ROFDHA) are proposed based on the Hamacher operation and dependent method. The operator can improve personal bias by assigning lower weights to biased evaluations (unduly high or unduly low values) and higher weights to mid values. Firstly, the basic operation rules, score function, distance and properties of Cq-ROFDHA are described. We then applied Cq-ROFDHA to service utility decisions for online health communities. Finally, we compare it with other aggregation factors. The results show that the Cq-ROFDHA operator has the advantages of consistency and superiority.
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