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首页> 外文期刊>Journal of Organizational Computing and Electronic Commerce >OPEN MOBILE MINER: A TOOLKIT FOR BUILDING SITUATION-AWARE DATA MINING APPLICATIONS
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OPEN MOBILE MINER: A TOOLKIT FOR BUILDING SITUATION-AWARE DATA MINING APPLICATIONS

机译:OPEN MOBILE MINER:一种构建情境数据挖掘应用程序的工具

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摘要

In organizational computing and information systems, data mining techniques have been widely used for analyzing customer behavior and discovering hidden patterns. Mobile Data Mining is the process of intelligently analyzing continuous data streams on mobile devices. The use of mobile data mining for real-time business intelligence applications can be greatly advantageous. Past research has shown that resource-aware adaptation of data stream mining can significantly improve the continuity of data mining operations in mobile environments. The key underlying premise is that by varying the accuracy of the analysis process in accordance with changing available resource levels, the longevity and continuity of mobile data mining applications is ensured. In this article we qualitatively extend the notion of resource-aware adaptation of mobile data mining to holistically enable situation-awareness feature for user applications. We then present a novel generic toolkit that enables building situation and resource-aware mobile data mining applications and describe along with underlying theoretical foundations of resource and situation criticality, awareness and adaptation, which are entirely transparent and hidden from the user. The Open Mobile Miner (OMM) toolkit builds on our research for performing adaptive analysis of data streams on mobile/embedded devices. Finally, we describe a mobile health monitoring application as a case study and discuss the results of our conducted experimental evaluation which demonstrate the adaptation transparency and easy use of OMM for building mobile data mining applications such as stock market monitoring and real estate data analysis.
机译:在组织计算和信息系统中,数据挖掘技术已被广泛用于分析客户行为和发现隐藏模式。移动数据挖掘是智能分析移动设备上连续数据流的过程。将移动数据挖掘用于实时商业智能应用程序可能会非常有利。过去的研究表明,对数据流挖掘的资源感知适应可以显着提高移动环境中数据挖掘操​​作的连续性。关键的前提是,通过根据变化的可用资源级别来改变分析过程的准确性,可以确保移动数据挖掘应用程序的寿命和连续性。在本文中,我们从质量上扩展了移动数据挖掘的资源感知适应性概念,以全面启用用户应用程序的态势感知功能。然后,我们提出了一个新颖的通用工具包,该工具包可以构建状况和资源感知的移动数据挖掘应用程序,并描述资源和状况的关键性,意识和适应性的基础理论基础,这些基础知识对用户是完全透明的,对用户而言是隐藏的。开放式移动矿机(OMM)工具包基于我们的研究,用于对移动/嵌入式设备上的数据流进行自适应分析。最后,我们以案例研究的形式描述了移动健康监控应用程序,并讨论了我们进行的实验评估的结果,这些结果证明了OMM的适应性透明性和易于使用性,可用于构建移动数据挖掘应用程序,例如股票市场监控和房地产数据分析。

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