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Effects of online fault detection mechanisms on Probabilistic Timing Analysis

机译:在线故障检测机制对概率时序分析的影响

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In real time systems, random caches have been proposed as a way to simplify software timing analysis, by avoiding corner cases usually found in deterministic systems. Using this random approach, one can obtain an application's probabilistic Worst Case Execution Time (pWCET) to be used for timing analysis. As with deterministic systems, technology scaling in cache memories is making transient and permanent faults more likely, which in turn affects the system's timing behavior. To mitigate these effects, one can introduce a detection mechanism that classifies a fault as transient or permanent, with the goal of disabling permanently faulty cache blocks to avoid future accesses. In this paper, we compare the effects of two online detection mechanisms for permanent faults, namely rule-based detection and Dynamic Hidden Markov Model (D-HMM) based detection, for the generation of safe pWCET estimates. Experimental results show that different mechanisms can greatly affect safe pWCET margins, and that by using D-HMM the pWCET of the system can be improved compared to rule-based detection.
机译:在实时系统中,已经提出了通过避免通常在确定性系统中遇到的极端情况来简化软件时序分析的一种方法,即随机缓存。使用这种随机方法,可以获取应用程序的概率最坏情况执行时间(pWCET),用于时序分析。与确定性系统一样,高速缓存存储器中的技术扩展使瞬态和永久性故障的可能性更大,这反过来又会影响系统的定时行为。为了减轻这些影响,可以引入一种将故障分类为暂时故障或永久故障的检测机制,其目的是禁用永久故障的高速缓存块以避免将来的访问。在本文中,我们比较了两种在线检测机制对永久性故障的影响,即基于规则的检测和基于动态隐马尔可夫模型(D-HMM)的检测,以生成安全的pWCET估计值。实验结果表明,不同的机制可以极大地影响安全的pWCET余量,并且与基于规则的检测相比,通过使用D-HMM,可以改善系统的pWCET。

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