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Application-oriented Context Modeling and Reasoning in Pervasive Computing

机译:以普遍计算为导向的上下文建模与推理

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Context-awareness is considered as a key problem in designing more adaptive applications in pervasive computing community. Context modeling and reasoning, which deal with high-level abstraction and inference of pervasive contextual information, are important research areas of context-awareness computing. Efforts have been put into these two areas and several prototype systems have been proposed. However, the huge amounts of contextual information in pervasive environment make existing systems inefficient, even useless. In this paper, we propose Enhanced Application-oriented Context Modeling and Reasoning (EACMR) system to deal with this problem. In EACMR system, we develop a context ontology (ACMRONT) to model the contexts in the pervasive computing. Different from previous researches, a context filter is designed to classify contexts by their importance. To promote the performance of the system, the reasoner in EACMR only deals with the applicationrelated contextual information rather than all the available contextual information. Experiments about EACMR system demonstrate its higher performance than those of previous systems.
机译:背景信息被认为是在普遍计算社区设计更多自适应应用程序中的关键问题。背景建模与推理,涉及普遍的上下文信息的高级抽象和推理,是语境意识计算的重要研究领域。努力已经投入了这两个区域,并提出了几种原型系统。然而,普遍存在环境中大量的上下文信息使得现有的系统效率低下,甚至无用。在本文中,我们提出了增强的应用面向应用的上下文建模和推理(EACMR)系统来处理此问题。在EACMR系统中,我们开发了一个上下文本体(ACMRONT)来模拟普遍计算中的上下文。与以前的研究不同,上下文过滤器旨在通过重要性对上下文进行分类。为了促进系统的表现,EACMR中的推理员只处理应用程序相关的上下文信息,而不是所有可用的上下文信息。关于EACMR系统的实验表明其性能高于先前系统的性能。

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