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SACRE: A tool for dealing with uncertainty in contextual requirements at runtime

机译:SACRE:一种在运行时处理上下文需求不确定性的工具

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Self-adaptive systems are capable of dealing with uncertainty at runtime handling complex issues as resource variability, changing user needs, and system intrusions or faults. If the requirements depend on context, runtime uncertainty will affect the execution of these contextual requirements. This work presents SACRE, a proof-of-concept implementation of an existing approach, ACon, developed by researchers of the Univ. of Victoria (Canada) in collaboration with the UPC (Spain). ACon uses a feedback loop to detect contextual requirements affected by uncertainty and data mining techniques to determine the best operationalization of contexts on top of sensed data. The implementation is placed in the domain of smart vehicles and the contextual requirements provide functionality for drowsy drivers.
机译:自适应系统能够在运行时处理不确定性,处理诸如资源可变性,不断变化的用户需求以及系统入侵或故障之类的复杂问题。如果需求取决于上下文,则运行时不确定性将影响这些上下文需求的执行。这项工作介绍了SACRE,这是由大学研究人员开发的现有方法ACon的概念验证实施。 (UPC)(西班牙)与维多利亚(加拿大)的合作。 ACon使用反馈回路来检测受不确定性影响的上下文需求,并使用数据挖掘技术来确定在感测数据之上的上下文的最佳操作性。该实现被放置在智能车辆领域,上下文需求为困倦的驾驶员提供了功能。

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