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Enhancing context specifications for dependable adaptive systems: A data mining approach

机译:增强可靠的自适应系统的上下文规范:一种数据挖掘方法

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Context: Adaptive systems are expected to cater for various operational contexts by having multiple strategies in achieving their objectives and the logic for matching strategies to an actual context. The prediction of relevant contexts at design time is paramount for dependability. With the current trend on using data mining to support the requirements engineering process, this task of understanding context for adaptive system at design time can benefit from such techniques as well.Objective: The objective is to provide a method to refine the specification of contextual variables and their relation to strategies for dependability. This refinement shall detect dependencies between such variables, priorities in monitoring them, and decide on their relevance in choosing the right strategy in a decision tree.Method: Our requirements-driven approach adopts the contextual goal modelling structure in addition to the operationalization values of sensed information to map contexts to the system's behaviour. We propose a design time analysis process using a subset of data mining algorithms to extract a list of relevant contexts and their related variables, tasks, and/or goals.Results: We experimentally evaluated our proposal on a Body Sensor Network system (BSN), simulating 12 resources that could lead to a variability space of 4096 possible context conditions. Our approach was able to elicit subtle contexts that would significantly affect the service provided to assisted patients and relations between contexts, assisting the decision on their need, and priority in monitoring.Conclusion: The use of some data mining techniques can mitigate the lack of precise definition of contexts and their relation to system strategies for dependability. Our method is practical and supportive to traditional requirements specification methods, which typically require intense human intervention.
机译:背景:自适应系统应通过在实现其目标时采用多种策略以及将策略与实际环境进行匹配的逻辑来满足各种操作环境。设计时对相关上下文的预测对于可靠性至关重要。随着使用数据挖掘来支持需求工程过程的当前趋势,在设计时理解自适应系统上下文的任务也可以从此类技术中受益。目的:目标是提供一种改进上下文变量规范的方法以及它们与可靠性策略的关系。这种改进将检测出这些变量之间的依赖关系,监视它们的优先级,并决定它们在决策树中选择正确策略的相关性。方法:我们的需求驱动方法除了感知到的操作值外,还采用上下文目标建模结构用于将上下文映射到系统行为的信息。我们提出了一个设计时间分析过程,该过程使用数据挖掘算法的子集来提取相关上下文及其相关变量,任务和/或目标的列表。结果:我们在人体传感器网络系统(BSN)上通过实验评估了我们的提案,模拟12个资源,这些资源可能导致4096个可能的上下文条件的可变性空间。我们的方法能够得出微妙的语境,这将严重影响为患者提供帮助的服务以及语境之间的关系,帮助决定他们的需求以及监测的优先级。结论:使用某些数据挖掘技术可以缓解缺乏精确度的情况上下文的定义及其与系统可靠性策略的关系。我们的方法实用且支持传统的需求规格说明方法,而传统的需求规格说明方法通常需要人工干预。

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