梯形区间2型模糊集加权平均泛化的新方法

Mihajlo Andelkovic, D. Saletic
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引用次数: 2

摘要

区间2型模糊集用于处理对同一实体可以进行多个模糊观测时存在的不确定信息。他们在工程推荐系统、模糊控制和建模、模式识别等方面发现了许多应用。针对梯形区间2型模糊集可表示的不确定性问题,提出了一种新的加权平均概化方法。提出了一组新的聚合算子,它们可以处理特定于感知计算的数据类型,因此可以用作词计算的引擎。时间复杂度是θ(n)讨论了软件实现的一些细节。新发动机家族已经比较了新的加权平均分析和经验。指出了它们的异同,并加以合理化。讨论了新引擎的简化版本如何类似于一些已知的类型约简算法。总结结论和有待解决的问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel approach for generalizing weighted averages for trapezoidal interval type-2 fuzzy sets
Interval type-2 fuzzy sets are used to deal with the uncertain information present when more than one fuzzy observation can be made about the same entity. They found numerous applications in engineering recommendation systems, fuzzy control and modeling, pattern recognition and other. The paper presents a novel approach for generalizing weighted averages on purpose of processing uncertainty expressible by trapezoidal interval type-2 fuzzy sets. A family of new aggregation operators is presented, that can process data types specific for perceptual computing, and thus can be used as an engine for computing with words. It has time complexity θ(n). Some software realization details are discussed. The new engine family has been compared to novel weighted averages both analytically and empirically. Their similarities and differences are pointed out and rationalized. It has been discussed how simplified versions of the new engine resemble to some known type-reduction algorithms. Conclusions and open questions are summarized.
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