From Validation of Medical Devices towards Validation of Adaptive Cyber-Physical Systems

J. Tavčar, J. Duhovnik, I. Horváth
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引用次数: 3

Abstract

Conventionally, a technical system is defined in the design phase and considers all important requirements and aspects. The expected operations and the circumstances of operations are to be known in advance. If these are known, then the designed system can even be validated before it is produced or launched on the market. Validation is typically based on predictive analyses or simulations. However, these do not apply completely in the case of smart systems such as smart cyber-physical systems (S-CPSs) which self-manage their operation, or at least a part of it. Being able to adapt during run-time and evolve over time, S-CPSs cannot be validated using conventional deterministic approaches. Typical examples of these self-managing systems are S-CPSs already used as instrumentation in the medical field. The above circumscribed situation stimulated our background research, the results of which are concisely summarized and critically concluded in this paper. The literature has been found fairly narrow in terms of novel validation approaches for self-managing systems. The literature proposes to share the tasks of operational and behavioral validation among the system designers and the technical systems themselves. While designers need prognostic approaches to validate system operation, systems need to construct validation plans and execute them at run-time. This requires additional, validation-specific functionalities and context-dependent mechanisms such as run-time validation frameworks or meta-models, objective-sensitive self-monitoring mechanisms, self-constraining and self-supporting mechanisms, and other enablers. Extensive foundational research and system prototype testing are deemed to be indispensable. To make the first small step in this direction, this paper proposes a concept for the validation of smart medical CPSs. This relies on the following hypothesis: If a system has the freedom for self-adaptation, then it should also be equipped with a self-control mechanism, meta-knowledge, and a supervisory controller. These additional resources enable purpose- and context-dependent semantic reasoning about the operational objectives and behavioral states. This paper suggests a number of topics for future research towards a run-time validation engine.
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从医疗器械验证到自适应信息物理系统验证
通常,技术系统是在设计阶段定义的,并考虑所有重要的需求和方面。预期的操作和操作情况应事先知道。如果这些都是已知的,那么设计的系统甚至可以在生产或投放市场之前进行验证。验证通常基于预测分析或模拟。然而,这些并不完全适用于智能系统,如智能网络物理系统(s - cps),它们可以自我管理其操作,或者至少是其中的一部分。s - cps能够在运行期间进行调整并随着时间的推移而发展,因此无法使用传统的确定性方法进行验证。这些自我管理系统的典型例子是已经在医疗领域作为仪器使用的s - cps。上述有限的情况激发了我们的背景研究,本文对研究结果进行了简明的总结和批判性的总结。在自我管理系统的新验证方法方面,文献已经被发现相当狭窄。文献建议在系统设计者和技术系统本身之间分担操作和行为验证的任务。当设计人员需要预测方法来验证系统运行时,系统需要构建验证计划并在运行时执行。这需要额外的、特定于验证的功能和上下文相关的机制,比如运行时验证框架或元模型、目标敏感的自我监控机制、自我约束和自我支持机制,以及其他支持机制。广泛的基础研究和系统原型测试被认为是必不可少的。为了在这个方向上迈出一小步,本文提出了智能医疗cps验证的概念。这依赖于以下假设:如果一个系统具有自适应的自由,那么它也应该配备一个自我控制机制、元知识和一个监督控制器。这些额外的资源支持关于操作目标和行为状态的目的和上下文相关的语义推理。本文提出了未来对运行时验证引擎进行研究的一些主题。
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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