Guaranteeing robustness in a mobile learning Application using formally verified MAPE loops

Didac Gil, Danny Weyns
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引用次数: 26

Abstract

Mobile learning applications support traditional indoor lectures with outdoor activities using mobile devices. An example scenario is a team of students that use triangulation techniques to learn properties of geometrical figures. In previous work, we developed an agent-based mobile learning application in which students use GPS-enabled phones to calculate distances between them. From practical experience, we learned that the required level of GPS accuracy is not always guaranteed, which undermines the use of the application. In this paper, we explain how we have extended the existing application with a self-adaptation layer, making the system robust to degrading GPS accuracy. The self-adaptive layer is conceived as a set of interacting MAPE loops (Monitor-Analysis-Plan-Execute), distributed over the phones. To guarantee the robustness requirements, we formally specify the self-adaptive behaviors using timed automata, and the required properties using timed computation tree logic. We use the Uppaal tool to model the self-adaptive system and verify the robustness requirements. Finally, we discuss how the formal design supported the implementation of the self-adaptive layer on top of the existing application.
使用正式验证的MAPE循环保证移动学习应用程序的鲁棒性
移动学习应用程序支持传统的室内讲座和使用移动设备的户外活动。一个示例场景是一组学生使用三角测量技术来学习几何图形的属性。在之前的工作中,我们开发了一个基于代理的移动学习应用程序,学生可以使用启用gps的手机来计算他们之间的距离。从实际经验中,我们了解到GPS精度的要求并不总是得到保证,这破坏了应用程序的使用。在本文中,我们解释了我们如何用自适应层扩展现有的应用,使系统对GPS精度下降具有鲁棒性。自适应层被认为是一组相互作用的MAPE循环(监控-分析-计划-执行),分布在电话上。为了保证鲁棒性要求,我们使用时间自动机形式化地指定自适应行为,并使用时间计算树逻辑指定所需的属性。我们使用Uppaal工具对自适应系统建模并验证鲁棒性需求。最后,我们讨论了形式化设计如何支持在现有应用程序之上实现自适应层。
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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