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Sacrificing a little space can significantly improve monitoring of time-sensitive cyber-physical systems

机译:牺牲一点空间可以显着改善监测时间敏感的网络物理系统

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The goal of runtime verification is to inspect the correctness of a system by incorporating a monitor during its execution. Predictability of time distribution of monitor invocations and memory usage are two indicators of the quality of a monitoring solution, specially in cyber-physical systems, where the physical environment is a part of the system dynamics. In our previous work, we proposed a control-theoretic approach for coordinating time predictability and memory utilization in runtime verification of time-sensitive systems. To this end, we designed controllers that attempt to improve time predictability, while ensuring the soundness of verification by incorporating a maximally utilized bounded memory buffer that accumulates events. Since the frequency of occurrence of environment actions in cyber-physical systems is not known a priori, the system may run into situations, where the buffer is full, but a monitor invocation has not yet been scheduled. In control theory, this is called the overshooting phenomenon, which inherently decreases time predictability. In this paper, we address the issue of overshoots, by employing a second controller that allows limited memory reservations to temporarily extend the size of the event buffer when the system is subject to bursts of environment actions. We apply our solution to the verification of the air/fuel ratio in a car engine exhaust. The acceptable ratio varies depending on the driving circumstances, and monitoring that ratio is important to control emissions in a vehicle. A highly predictable monitor imposes uniform load on the engine control unit (ECU), thus, not negatively or sporadically affecting its control tasks. The experimental results exhibit two significant contributions: we (1) demonstrate the advantages of applying our approach to achieve low variation in the frequency of monitor invocations for verication, while maintaining maximum memory utilization, and (2) clearly illustrate that by negligible tempor- ry increases in the size of the event buffer, the number of overshoots decreases significantly, which in turn substantially increases time predictability of runtime verication.
机译:运行时验证的目标是通过在其执行期间结合监视器来检查系统的正确性。监视器调用和内存使用时间分布的可预测性是监控解决方案质量的两个指标,特别是网络物理系统,物理环境是系统动态的一部分。在我们以前的工作中,我们提出了一种控制定理方法,用于协调时间敏感系统的运行时验证中的时间可预测性和内存利用率。为此,我们设计了尝试提高时间可预测性的控制器,同时通过结合累积事件的最大利用的有界内存缓冲器来确保验证的声音。由于网络物理系统中环境动作的发生频率不知道先验,因此系统可以纳入缓冲区已满的情况,但尚未调度监视器调用。在控制理论中,这被称为过冲现象,其固有地降低时间可预测性。在本文中,我们通过采用第二个控制器来解决过冲问题,其中第二个控制器允许有限的内存预留暂时扩展当系统受环境动作突发时事件缓冲区的大小。我们将解决方案应用于验证汽车发动机排气中的空气/燃料比。可接受的比率根据驾驶环境而变化,监测该比率对于控制车辆排放是重要的。高度可预测的监视器在发动机控制单元(ECU)上施加均匀的负载,从而造成均匀或散发地影响其控制任务。实验结果表现出两项显着贡献:我们(1)展示了应用我们的方法在验证的监视器调用频率下实现低变化的优点,同时保持最大的内存利用,(2)清楚地说明了通过可忽略的临时在事件缓冲区的大小上增加,过冲的数量显着降低,这又增加了运行时验证的时间可预测性。

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