Improving model-based verification of embedded systems by analyzing component dependences

S. Siegl, Philipp Caliebe
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引用次数: 7

Abstract

Embedded systems in automobiles become increasingly complex as they are intended to make vehicles even more safe, comfortable, and efficient. International norms like ISO 26262 and IEC 61165 postulate methods for the development and verification of safety critical systems. These standards should ensure that the dependability and quality of the embedded systems is maintained while their complexity and interdependence increases. Yet, the standards do not contain concrete methods or tools for their fulfillment. As concerns classic techniques for dependability analysis they either base on system analysis by means of Markov analysis or on reliability estimation from a usage perspective. Treating the system only from one perspective, however, is a drawback as the system analysis neglects functional or non-functional dependences of the system. These dependences can directly influence the reliability in the field usage. In this paper we present our approach to combine component dependency models with usage models to overcome these deficiencies. It is possible to identify usage scenarios which aim for critical dependences and to analyze the interaction of components inside the system. On the other hand usage scenarios can be assessed whether they meet the desired verification purpose. The component dependency models reveal dependences that were not identified before, because it allows the extraction of implications across functional and non functional dependences like memory, timing and processor utilization.
通过分析组件依赖关系,改进嵌入式系统基于模型的验证
汽车中的嵌入式系统变得越来越复杂,因为它们的目的是使车辆更加安全、舒适和高效。ISO 26262和IEC 61165等国际规范规定了开发和验证安全关键系统的方法。这些标准应确保嵌入式系统的可靠性和质量在其复杂性和相互依赖性增加时得到维护。然而,这些标准并不包含实现它们的具体方法或工具。关于可靠性分析的经典技术,它们要么基于基于马尔可夫分析的系统分析,要么基于从使用角度出发的可靠性估计。然而,仅从一个角度处理系统是一个缺点,因为系统分析忽略了系统的功能性或非功能性依赖。这些依赖关系会直接影响现场使用的可靠性。在本文中,我们提出了将组件依赖模型与使用模型结合起来以克服这些缺陷的方法。可以识别针对关键依赖关系的使用场景,并分析系统内组件的交互。另一方面,可以评估使用场景是否满足期望的验证目的。组件依赖模型揭示了以前没有标识的依赖,因为它允许跨功能和非功能依赖(如内存、时间和处理器利用率)提取含义。
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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