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SYSTEM AND METHOD FOR PROBABILISTIC RELATIONAL CLUSTERING

机译:概率关系聚类的系统和方法

摘要

Relational clustering has attracted more and more attention due to its phenomenal impact in various important applications which involve multi-type interrelated data objects, such as Web mining, search marketing, bioinformatics, citation analysis, and epidemiology. A probabilistic model is presented for relational clustering, which also provides a principal framework to unify various important clustering tasks including traditional attributes-based clustering, semi-supervised clustering, co-clustering and graph clustering. The model seeks to identify cluster structures for each type of data objects and interaction patterns between different types of objects. Under this model, parametric hard and soft relational clustering algorithms are provided under a large number of exponential family distributions. The algorithms are applicable to relational data of various structures and at the same time unify a number of state-of-the-art clustering algorithms: co-clustering algorithms, the k-partite graph clustering, and semi-supervised clustering based on hidden Markov random fields.
机译:关系聚类因其在各种重要应用中的显着影响而受到越来越多的关注,这些应用涉及多种类型的相关数据对象,例如Web挖掘,搜索营销,生物信息学,引文分析和流行病学。提出了一种用于关系聚类的概率模型,该模型还提供了一个统一的框架,以统一各种重要的聚类任务,包括传统的基于属性的聚类,半监督聚类,共聚和图聚类。该模型试图为每种类型的数据对象以及不同类型的对象之间的交互模式识别集群结构。在此模型下,在大量指数族分布下提供了参数化的硬和软关系聚类算法。该算法适用于各种结构的关系数据,并且同时统一了许多最新的聚类算法:协同聚类算法,k部分图聚类和基于隐马尔可夫的半监督聚类随机字段。

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