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Privacy-preserving agent-based distributed data clustering

机译:基于隐私保护代理的分布式数据集群

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A growing number of applications in distributed environment involve very large data sets that are inherently distributed among a large number of autonomous sources over a network. The demand to extend data mining technology to such distributed data sets has motivated the development of several approaches to distributed data mining and knowledge discovery, of which only a few make use of agents. We briefly review existing approaches and argue for the potential added value of using agent technology in the domain of knowledge discovery, discussing both issues and benefits. We also propose an approach to distributed data clustering, outline its agent-oriented implementation, and examine potential privacy violating attacks which agents may incur.
机译:分布式环境中越来越多的应用程序涉及非常大的数据集,这些数据集固有地分布在网络上的大量自治源之间。将数据挖掘技术扩展到这样的分布式数据集的需求促使了几种分布式数据挖掘和知识发现方法的发展,其中只有少数几种使用代理。我们简要回顾了现有方法,并讨论了在知识发现领域使用代理技术的潜在附加价值,并讨论了问题和好处。我们还提出了一种用于分布式数据集群的方法,概述了其面向代理的实现,并检查了代理可能引起的潜在侵犯隐私的攻击。

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