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Association Rule Extraction from XML Stream Data for Wireless Sensor Networks

机译:从XML流数据中提取关联规则以用于无线传感器网络

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摘要

With the advances of wireless sensor networks, they yield massive volumes of disparate, dynamic and geographically-distributed and heterogeneous data. The data mining community has attempted to extract knowledge from the huge amount of data that they generate. However, previous mining work in WSNs has focused on supporting simple relational data structures, like one table per network, while there is a need for more complex data structures. This deficiency motivates XML, which is the current de facto format for the data exchange and modeling of a wide variety of data sources over the web, to be used in WSNs in order to encourage the interchangeability of heterogeneous types of sensors and systems. However, mining XML data for WSNs has two challenging issues: one is the endless data flow; and the other is the complex tree structure. In this paper, we present several new definitions and techniques related to association rule mining over XML data streams in WSNs. To the best of our knowledge, this work provides the first approach to mining XML stream data that generates frequent tree items without any redundancy.
机译:随着无线传感器网络的进步,它们可以产生大量不同的,动态的,地理分布的异构数据。数据挖掘社区已尝试从其生成的大量数据中提取知识。但是,WSNs中以前的挖掘工作主要集中在支持简单的关系数据结构,例如每个网络一个表,同时还需要更复杂的数据结构。这种缺陷促使XML成为WSN中使用的XML,它是Web上各种数据源的数据交换和建模的当前事实上的格式,目的是鼓励异构类型的传感器和系统的互换性。但是,为WSN挖掘XML数据有两个具有挑战性的问题:一个是无休止的数据流。另一个是复杂的树形结构。在本文中,我们提出了几种与WSN中XML数据流上的关联规则挖掘相关的新定义和技术。据我们所知,这项工作提供了挖掘XML流数据的第一种方法,该数据生成频繁的树项而没有任何冗余。

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