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Supporting Decision-Making for Self-Adaptive Systems: From Goal Models to Dynamic Decision Networks

机译:支持自适应系统的决策:从目标模型到动态决策网络

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[Context/Motivation] Different modeling techniques have been used to model requirements and decision-making of self-adaptive systems (SASs). Specifically, goal models have been prolific in supporting decision-making depending on partial and total fulfilment of functional (goals) and non-functional requirements (softgoals). Different goal-realization strategies can have different effects on softgoals which are specified with weighted contribution-links. The final decision about what strategy to use is based, among other reasons, on a utility function that takes into account the weighted sum of the different effects on softgoals. [Questions/Problems] One of the main challenges about decision-making in self-adaptive systems is to deal with uncertainty during runtime. New techniques are needed to systematically revise the current model when empirical evidence becomes available from the deployment. [Principal ideas/results] In this paper we enrich the decision-making supported by goal models by using Dynamic Decision Networks (DDNs). Goal realization strategies and their impact on softgoals have a correspondence with decision alternatives and conditional probabilities and expected utilities in the DDNs respectively. Our novel approach allows the specification of preferences over the softgoals and supports reasoning about partial satisfaction of softgoals using probabilities. We report results of the application of the approach on two different cases. Our early results suggest the decision-making process of SASs can be improved by using DDNs.
机译:[上下文/动机]不同的建模技术已被用于模拟自适应系统(SASS)的要求和决策。具体而言,目标模型是支持决策的多产,具体取决于职能(目标)和非功能性要求(SoftgoAL)的部分和总满足。不同的目标 - 实现策略可以对SoftGoals产生不同的影响,这些效果被称为加权贡献链路。关于使用策略的最终决定是基于什么原因,在实用程序上,该函数考虑了SoftGoS上不同效果的加权之和。 [问题/问题]自适应系统决策的主要挑战之一是在运行时处理不确定性。当经验证据可从部署中获得时,需要新技术来系统地修改当前模型。 [主要思想/结果]在本文中,我们通过使用动态决策网络(DDNS)来丰富目标模型支持的决策。目标实现策略及其对软件软件的影响与DDNS中的决策替代品和有条件概率和预期公用事业的对应关系。我们的新方法允许通过软体代表的偏好规范,并支持使用概率对软件的部分满意度的推理。我们向两种不同案件报告该方法的应用结果。我们的早期结果表明,使用DDN可以改善SASS的决策过程。

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