分布式环境下的交互聚类

P. Alagambigai, K. Thangavel, N. Visalakshi
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引用次数: 1

摘要

由于自治数据源数量的爆炸式增长,对分布式知识发现和交互式数据挖掘的有效方法的需求日益增长。本文通过对现有可视化集群渲染系统的扩展,提出了分布式VISTA系统。首先,使用VISTA系统对局部数据集的所有对象进行分组,并将生成的质心作为局部模型。然后,利用VISTA将局部模型组合成全局模型。最后,利用全局模型自动识别全局聚类,并对相应的目标进行可视化探索。在UCI机器学习数据库的不同数据集上进行了实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interactive Clustering in Distributed Environment
Due to the explosion in the number of autonomous data sources, there is a growing need for effective approaches to distributed knowledge discovery and interactive data mining. In this paper, distributed VISTA system is proposed by extending existing visual cluster rendering system for distributed environment. First, all objects of local datasets are grouped using VISTA system and resulting centroids are considered as local models. Then, local models are combined to form a global model using VISTA. Finally, global clusters are automatically identified using global models and corresponding objects are visually explored. The experiments are carried out for various datasets of UCI machine learning data repository.
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