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Error Recovery in the Time-Triggered Paradigm with FTT-CAN

机译:使用FTT-CAN的时间触发范式中的错误恢复

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摘要

Data networks are naturally prone to interferences that can corrupt messages, leading to performance degradation or even to critical failure of the corresponding distributed system. To improve resilience of critical systems, time-triggered networks are frequently used, based on communication schedules defined at design-time. These networks offer prompt error detection, but slow error recovery that can only be compensated with bandwidth overprovisioning. On the contrary, the Flexible Time-Triggered (FTT) paradigm uses online traffic scheduling, which enables a compromise between error detection and recovery that can achieve timely recovery with a fraction of the needed bandwidth. This article presents a new method to recover transmission errors in a time-triggered Controller Area Network (CAN) network, based on the Flexible Time-Triggered paradigm, namely FTT-CAN. The method is based on using a server (traffic shaper) to regulate the retransmission of corrupted or omitted messages. We show how to design the server to simultaneously: (1) meet a predefined reliability goal, when considering worst case error recovery scenarios bounded probabilistically by a Poisson process that models the fault arrival rate; and, (2) limit the direct and indirect interference in the message set, preserving overall system schedulability. Extensive simulations with multiple scenarios, based on practical and randomly generated systems, show a reduction of two orders of magnitude in the average bandwidth taken by the proposed error recovery mechanism, when compared with traditional approaches available in the literature based on adding extra pre-defined transmission slots.
机译:数据网络自然容易受到干扰,可能会破坏消息,从而导致性能下降,甚至导致相应分布式系统的严重故障。为了提高关键系统的弹性,基于设计时定义的通信时间表,经常使用时间触发网络。这些网络提供了迅速的错误检测功能,但是错误恢复速度缓慢,只能通过提供过量的带宽来弥补。相反,灵活的时间触发(FTT)范例使用在线流量调度,这使错误检测与恢复之间可以折衷,从而可以以所需带宽的一小部分实现及时恢复。本文提出了一种新的方法来恢复时间触发的控制器局域网(CAN)网络中的传输错误,该方法基于灵活的时间触发范例,即FTT-CAN。该方法基于使用服务器(流量整形器)来调节已损坏或遗漏消息的重发。我们展示了如何设计服务器以使其同时进行:(1)考虑到最坏情况下的错误恢复方案(通过概率模拟故障到达率的Poisson流程来界定)时,达到预定的可靠性目标; (2)限制消息集中的直接和间接干扰,从而保留整个系统的可调度性。与实际情况中基于增加额外预定义的方法相比,基于实际和随机生成的系统的多种场景的广泛仿真(基于实际和随机生成的系统)显示,所提出的错误恢复机制所占用的平均带宽减少了两个数量级。传输插槽。

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