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Monitoring Threshold Functions over Distributed Data Streams with Node Dependent Constraints

机译:监视具有节点相关约束的分布式数据流上的阈值功能

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Monitoring data streams in a distributed system has attracted considerable interest in recent years. The task of feature selection (e.g., by monitoring the information gain of various features) requires a very high communication overhead when addressed using straightforward centralized algorithms. While most of the existing algorithms deal with monitoring simple aggregated values such as frequency of occurrence of stream items, motivated by recent contributions based on geometric ideas we present an alternative approach. The proposed approach enables monitoring values of an arbitrary threshold function over distributed data streams through stream dependent constraints applied separately on each stream. We report numerical experiments on a real-world data that detect instances where communication between nodes is required, and compare the approach and the results to those recently reported in the literature.
机译:近年来,在分布式系统中监视数据流引起了极大的兴趣。当使用简单的集中式算法解决时,特征选择的任务(例如,通过监视各种特征的信息增益)需要非常高的通信开销。尽管大多数现有算法都用于监视简单的聚合值,例如流项目的出现频率,但由于基于几何思想的最新贡献,我们还是提出了另一种方法。所提出的方法使得能够通过分别应用于每个流的与流有关的约束来监视分布式数据流上的任意阈值函数的值。我们在真实世界的数据上报告了数值实验,该数据检测了需要节点之间进行通信的实例,并将该方法和结果与文献中最近报道的那些进行了比较。

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