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A vector similarity measure for linguistic approximation: Interval type-2 and type-1 fuzzy sets

机译:用于语言逼近的向量相似性度量:区间2型和1型模糊集

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摘要

Fuzzy logic is frequently used in computing with words (CWW). When input words to a CWW engine are modeled by interval type-2 fuzzy sets (IT2 FSs), the CWW engine's output can also be an IT2 FS, (A) over tilde, which needs to be mapped to a linguistic label so that it can be understood. Because each linguistic label is represented by an IT2 FS (B) over tilde (i), there is a need to compare the similarity of (A) over tilde and (B) over tilde (i) to find the (B) over tilde (i) most similar to (A) over tilde. In this paper, a vector similarity measure (VSM) is proposed for IT2 FSs, whose two elements measure the similarity in shape and proximity, respectively. A comparative study shows that the VSM gives more reasonable results than all other existing similarity measures for IT2 FSs for the linguistic approximation problem. Additionally, the VSM can also be used for type-1 FSs, which are special cases of IT2 FSs when all uncertainty disappears. (c) 2007 Elsevier Inc. All rights reserved.
机译:模糊逻辑通常用于单词计算(CWW)。当使用间隔2型模糊集(IT2 FS)对CWW引擎的输入单词进行建模时,CWW引擎的输出也可以是波浪号上的IT2 FS(A),需要将其映射到语言标签,以便它可以理解。因为每个语言标签都由波浪号(i)上的IT2 FS(B)表示,所以需要比较波浪号(i)和波浪号(i)上的(A)的相似性,以找到波浪号(i)上的(B) (i)最类似于(A)波浪号。本文提出了一种针对IT2 FS的矢量相似度度量(VSM),其两个要素分别度量形状和邻近度的相似度。一项比较研究表明,对于语言近似问题,VSM比IT2 FS的所有其他现有相似性度量方法给出的结果更为合理。此外,VSM还可以用于类型1的FS,这是所有不确定性消失后IT2 FS的特殊情况。 (c)2007 Elsevier Inc.保留所有权利。

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