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On the use of valued action profiles for relational multi-criteria clustering

机译:关于将有价值的操作配置文件用于关系多准则聚类

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Clustering techniques aim at eliciting hidden structures of a dataset by partitioning it into groups of similar elements. We will focus on the special case of relational clustering, where the similarity is based on relations that exist between elements rather than on their respective intrinsic features. As will be shown, particular attention has to be paid when applying a relational approach to the context of multi-criteria decision making. This paper introduces the concept of valued action profiles, a formalism for handling elements that are defined by pairwise valued outranking relations. For our experimental study, we then integrate these profiles into an adapted k-means algorithm that returns a relational partition. Results on both artificial and real datasets show that the use of the proposed method leads to meaningful relational partitions.
机译:聚类技术旨在通过将数据集划分为相似元素的组来得出数据集的隐藏结构。我们将关注关系聚类的特殊情况,其中相似性基于元素之间存在的关系,而不是基于它们各自的固有特征。如将显示的那样,将关系方法应用于多准则决策时,必须特别注意。本文介绍了有价值的操作配置文件的概念,这是一种处理由成对的有价值的排位关系定义的元素的形式主义。对于我们的实验研究,我们然后将这些配置文件集成到一个适应的k均值算法中,该算法返回一个关系分区。人工数据集和实际数据集上的结果均表明,所提方法的使用导致有意义的关系分区。

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