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Relational concept analysis: mining concept lattices from multi-relational data

机译:关系概念分析:从多关系数据中挖掘概念格

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The processing of complex data is admittedly among the major concerns of knowledge discovery from data (kdd). Indeed, a major part of the data worth analyzing is stored in relational databases and, since recently, on the Web of Data. This clearly underscores the need for Entity-Relationship and rdf compliant data mining (dm) tools. We are studying an approach to the underlying multi-relational data mining (mrdm) problem, which relies on formal concept analysis (fca) as a framework for clustering and classification. Our relational concept analysis (rca) extends fca to the processing of multi-relational datasets, i.e., with multiple sorts of individuals, each provided with its own set of attributes, and relationships among those. Given such a dataset, rca constructs a set of concept lattices, one per object sort, through an iterative analysis process that is bound towards a fixed-point. In doing that, it abstracts the links between objects into attributes akin to role restrictions from description logics (dls). We address here key aspects of the iterative calculation such as evolution in data description along the iterations and process termination. We describe implementations of rca and list applications to problems from software and knowledge engineering.
机译:不可否认,复杂数据的处理是从数据(kdd)中发现知识的主要问题。实际上,值得分析的数据的主要部分存储在关系数据库中,并且自最近以来存储在数据网络中。这显然强调了对实体关系和rdf兼容数据挖掘(dm)工具的需求。我们正在研究一种解决潜在的多关系数据挖掘(mrdm)问题的方法,该方法依赖于形式概念分析(fca)作为聚类和分类的框架。我们的关系概念分析(rca)将fca扩展到多关系数据集的处理,即具有多种类型的个体,每种个体都有其自己的属性集,以及这些属性之间的关系。给定了这样的数据集,rca通过绑定到固定点的迭代分析过程来构造一组概念格,每个对象类别一个。为此,它将对象之间的链接抽象为类似于描述逻辑(dls)中角色限制的属性。我们在此介绍迭代计算的关键方面,例如沿迭代和过程终止的数据描述的演变。我们描述了rca的实现,并列出了软件和知识工程中的应用程序。

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