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Methods in Ranking Fuzzy Numbers: A Unified Index and Comparative Reviews

机译:模糊数排名方法:统一索引和比较评论

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Fuzzy set theory, extensively applied in abundant disciplines, has been recognized as a plausible tool in dealing with uncertain and vague information due to its prowess in mathematically manipulating the knowledge of imprecision. In fuzzy-data comparisons, exploring the general ranking measure that is capable of consistently differentiating the magnitude of fuzzy numbers has widely captivated academics’ attention. To date, numerous indices have been established; however, counterintuition, less discrimination, and/or inconsistency on their fuzzy-number rating outcomes have prohibited their comprehensive implementation. To ameliorate their manifested ranking weaknesses, this paper proposes a unified index that multiplies weighted-mean and weighted-area discriminatory components of a fuzzy number, respectively, called centroid value and attitude-incorporated left-and-right area. From theoretical proof of consistency property and comparative studies for triangular, triangular-and-trapezoidal mixed, and nonlinear fuzzy numbers, the unified index demonstrates conspicuous ranking gains in terms of intuition support, consistency, reliability, and computational simplicity capability. More importantly, the unified index possesses the consistency property for ranking fuzzy numbers and their images as well as for symmetric fuzzy numbers with an identical altitude which is a rather critical property for accurate matching and/or retrieval of information in the field of computer vision and image pattern recognition.
机译:由于模糊集理论在数学上处理不精确知识方面的能力,模糊集理论已广泛应用于丰富学科中,被认为是处理不确定和模糊信息的一种可行工具。在模糊数据比较中,探索能够始终如一地区分模糊数大小的一般排名度量标准已引起了广泛的关注。迄今为止,已经建立了许多索引。但是,反直觉,较少的歧视和/或它们的模糊数评级结果不一致使它们无法全面实施。为了改善其明显的排名劣势,本文提出了一个统一的指标,该指标分别乘以模糊数的加权均值和加权面积区分成分,分别称为质心值和合并了姿态的左右区域。从一致性特性的理论证明以及对三角形,三角形和梯形混合以及非线性模糊数的比较研究中,统一指标显示出在直觉支持,一致性,可靠性和计算简单性方面的明显排名提升。更重要的是,统一索引具有对模糊数及其图像进行排序的一致性属性,以及具有相同高度的对称模糊数的一致性属性,这对于在计算机视觉和计算机领域准确匹配和/或检索信息而言是至关重要的属性。图像模式识别。

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