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DCf: a double clustering framework for fuzzy information granulation

机译:DCf:用于模糊信息细化的双聚类框架

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In this paper, we present a framework for extracting well-defined and semantically sound information granules. The framework is mainly centered on a double clustering process, hence, it is called DCf (double clustering framework). A first clustering process identifies cluster prototypes in the multidimensional data space, then the projections of these prototypes are further clustered along each dimension to provide a granulation of data. Finally, the extracted granules are described in terms of fuzzy sets that meet interpretability constraints so as to provide a qualitative description of the information granules. Different implementations of DCf are presented and compared on a medical diagnosis problem to show the utility of the proposed framework.
机译:在本文中,我们提出了一个框架,用于提取定义明确且语义合理的信息颗粒。该框架主要以双重群集过程为中心,因此,它被称为DCf(双重群集框架)。第一个聚类过程会在多维数据空间中标识聚类原型,然后将这些原型的投影沿每个维度进一步聚类以提供数据的粒度。最后,根据满足可解释性约束的模糊集描述提取的颗粒,以便对信息颗粒进行定性描述。提出了DCf的不同实现方式,并在医学诊断问题上进行了比较,以显示所提出框架的实用性。

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