Incremental consistency checking for pervasive context

Chang Xu, S. Cheung, W. Chan
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引用次数: 78

Abstract

Applications in pervasive computing are typically required to interact seamlessly with their changing environments. To provide users with smart computational services, these applications must be aware of incessant context changes in their environments and adjust their behaviors accordingly. As these environments are highly dynamic and noisy, context changes thus acquired could be obsolete, corrupted or inaccurate. This gives rise to the problem of context inconsistency, which must be timely detected in order to prevent applications from behaving anomalously. In this paper, we propose a formal model of incremental consistency checking for pervasive contexts. Based on this model, we further propose an efficient checking algorithm to detect inconsistent contexts. The performance of the algorithm and its advantages over conventional checking techniques are evaluated experimentally using Cabot middleware.
普遍上下文的增量一致性检查
普适计算中的应用程序通常需要与其不断变化的环境进行无缝交互。为了向用户提供智能计算服务,这些应用程序必须意识到其环境中不断变化的上下文,并相应地调整其行为。由于这些环境是高度动态和嘈杂的,因此获得的上下文变化可能是过时的、损坏的或不准确的。这就产生了上下文不一致的问题,为了防止应用程序出现异常行为,必须及时检测上下文不一致的问题。在本文中,我们提出了一个普适上下文的增量一致性检验的形式化模型。在此模型的基础上,我们进一步提出了一种高效的检测不一致上下文的算法。利用Cabot中间件对该算法的性能及其相对于传统检测技术的优越性进行了实验评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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