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FUSE (Fuzzy Similarity Measure) - A measure for determining fuzzy short text similarity using Interval Type-2 fuzzy sets

机译:熔断器(模糊相似度测量) - 使用间隔类型-2模糊集确定模糊短文本相似度的度量

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Measurement of the semantic and syntactic similarity of human utterances is essential in developing language that is understandable when machines engage in dialogue with users. However, human language is complex and the semantic meaning of an utterance is usually dependent on context at a given time and also based on learnt experience of the meaning of the perception based words that are used. Limited work in terms of the representation and coverage has been done on the development of fuzzy semantic similarity measures. This paper proposes a new measure known as FUSE (FUzzy Similarity mEasure) which determines similarity using expanded categories of perception based words that have been modelled using Interval Type-2 fuzzy sets. The paper describes the method of obtaining the human ratings of these words based on Mendel's methodology and applies them within the FUSE algorithm. FUSE is then evaluated on three established datasets and is compared with two known semantic similarity algorithms. Results indicate FUSE provides higher correlations to human ratings.
机译:人类话语的语义和句法相似性的测量对于当机器与用户的对话进行对话时,可以理解的语言至关重要。然而,人类语言是复杂的,话语的语义含义通常在给定时间依赖于上下文,并基于所使用的感知词的含义的学习经验。在模糊语义相似措施的发展方面取得了有限的代表和覆盖范围。本文提出了一种新的措施,称为熔断器(模糊相似度测量),其使用使用间隔类型-2模糊集模型建模的基于展示的基于感知的词语来确定相似性。本文介绍了基于孟德尔的方法获得这些单词的人类评级的方法,并在熔丝算法内应用它们。然后在三个已建立的数据集中进行评估保险丝,并与两个已知的语义相似性算法进行比较。结果表明保险丝提供与人类评级更高的相关性。

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