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Direct Factorization by Similarity of Fuzzy Concept Lattices by Factorization of Input Data

机译:基于输入数据的分解,通过模糊概念格的相似性直接分解

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The paper presents additional results on factorization by similarity of fuzzy concept lattices. A fuzzy concept lattice is a hierarchically ordered collection of clusters extracted from tabular data. The basic idea of factorization by similarity is to have, instead of a possibly large original fuzzy concept lattice, its factor lattice. The factor lattice contains less clusters than the original concept lattice but, at the same time, represents a reasonable approximation of the original concept lattice and provides us with a granular view on the original concept lattice. The factor lattice results by factorization of the original fuzzy concept lattice by a similarity relation. The similarity relation is specified by a user by means of a single parameter, called a similarity threshold. Smaller similarity thresholds lead to smaller factor lattices, i.e. to more comprehensible but less accurate approximations of the original concept lattice. Therefore, factorization by similarity provides a trade-off between comprehensibility and precision. We first recall the notion of factorization. Second, we present a way to compute the factor lattice of a fuzzy concept lattice directly from input data, i.e. without the need to compute the possibly large original concept lattice.
机译:本文通过模糊概念格的相似性提供了额外的结果。模糊概念格子是从表格数据中提取的分层有序集群集群。相似性的分解的基本思想是具有,而不是可能的大型原始模糊概念格,其因子格。因子格子含有比原始概念格的较少的簇,但同时表示原始概念格的合理近似,并为我们提供了原始概念格的粒度。通过相似关系对原始模糊概念晶格进行分解的因子晶格。用户通过单个参数指定相似关系,称为相似阈值。较小的相似性阈值导致较小的因子格子,即更可理解但更准确的原始概念格的近似。因此,相似性的分解在可理解性和精度之间提供了权衡。我们首先回忆起因分解的概念。其次,我们提出了一种方法来将模糊概念晶格的因子格直接从输入数据计算,即,没有必要计算可能的大型原始概念格子。

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