嵌入式系统的自我意识和自我表达驱动容错

Tatiana Djaba Nya, S. Stilkerich, Christian Siemers
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引用次数: 4

摘要

计算系统日益增长的复杂性和规模,以及部署环境变化的不可预测性,使得它们的设计越来越具有挑战性;特别是对于安全关键系统。具体来说,识别系统中的故障不仅耗时,而且在可靠性和完整性方面也很困难。本文利用自我意识和自我表达的概念,提出了一种基于统计特征的容错方法。这些特征表征了组件的行为,它们被加权,可以与运行时的测量值进行比较,以表征系统的良好行为。仿真结果表明,该方法结合自感知和自表达系统层,将故障识别和恢复与有效的系统设计相结合。
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Self-aware and self-expressive driven fault tolerance for embedded systems
The growing complexity and size of computing systems as well as the unpredictability about changes in their deployment environment make their design increasingly challenging; especially for safety critical systems. Specifically the recognition of a fault within a system might be not only time consuming but also difficult in terms of reliability and completeness. This paper presents an approach to fault tolerance based on statistical features using the concepts of self-awareness and self-expression. These features characterize the behaviour of components, they are weighted and can be compared to measured values during runtime to characterize the well-behaviour of the system. Simulations show that this approach, used with the self-awareness and self-expression system layers, combines failure recognition and recovery with effective system design.
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