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Alpha-Level Aggregation: A Practical Approach to Type-1 OWA Operation for Aggregating Uncertain Information with Applications to Breast Cancer Treatments

机译:Alpha级汇总:一种类型为OWA操作的实用方法,用于汇总不确定信息并应用于乳腺癌治疗

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Type-1 Ordered Weighted Averaging (OWA) operator provides us with a new technique for directly aggregating uncertain information with uncertain weights via OWA mechanism in soft decision making and data mining, in which uncertain objects are modeled by fuzzy sets. The Direct Approach to performing type-1 OWA operation involves high computational overhead. In this paper, we define a type-1 OWA operator based on the alpha-cuts of fuzzy sets. Then, we prove a Representation Theorem of type-1 OWA operators, by which type-1 OWA operators can be decomposed into a series of alpha-level type-1 OWA operators. Furthermore, we suggest a fast approach, called Alpha-Level Approach, to implementing the type-1 OWA operator. A practical application of type-1 OWA operators to breast cancer treatments is addressed. Experimental results and theoretical analyses show that: 1) the Alpha-Level Approach with linear order complexity can achieve much higher computing efficiency in performing type-1 OWA operation than the existing Direct Approach, 2) the type-1 OWA operators exhibit different aggregation behaviors from the existing fuzzy weighted averaging (FWA) operators, and 3) the type-1 OWA operators demonstrate the ability to efficiently aggregate uncertain information with uncertain weights in solving real-world soft decision-making problems.
机译:Type-1有序加权平均(OWA)运算符为我们提供了一种新技术,可通过OWA机制在软决策和数据挖掘中直接聚合具有不确定权重的不确定信息,其中不确定对象是通过模糊集建模的。执行1类OWA操作的直接方法涉及大量的计算开销。在本文中,我们基于模糊集的alpha割定义了一种类型为OWA的算子。然后,我们证明了类型为1的OWA算子的表示定理,通过该表示定理,类型1的OWA算子可以分解为一系列α级的类型为1的OWA算子。此外,我们建议一种称为Alpha级方法的快速方法来实现类型1 OWA运算符。解决了类型1 OWA操作员在乳腺癌治疗中的实际应用。实验结果和理论分析表明:1)具有线性阶数复杂度的Alpha-Level方法在执行Type-1 OWA运算方面可以比现有的直接方法获得更高的计算效率; 2)Type-1 OWA运算符表现出不同的聚合行为根据现有的模糊加权平均(FWA)运算符,以及3)1型OWA运算符,可以有效地聚合具有不确定权重的不确定信息,从而解决现实世界中的软决策问题。

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