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Effecient backup schemes for processors in embedded systems

机译:嵌入式系统中处理器的高效备份方案

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Embedded processors are often used in safety-critical applications such as automotive engineering. Then a high level of reliability over a long lifetime is a critical demand. Higher levels of integration associated with decreasing feature size and lower signal-to-noise ratios in state-of-the-art digital circuits make vulnerabiltiy to dynamic as well as static fault effects more likely than in more robust technologies. Traditional fault-tolerant design technology suffers from several drawbacks. One such example is that the triple redundancy schemes used in avionics are costly, while another is that because only one permanent fault can be recognized and compensated on-line, the second fault may just be noticed. In this paper we present schemes for embedded processors which target a long-term dependability by handling even a series of transient fault sin an efficient way. It is based on on-line recognition and repair of non-permanent faults using a roll-back strategy (in short time). For faults that are recognized as permanent, we will discuss possibilities and limitations of reconfiguration or self-repair by using (in-field-) programmable logic devices. This requires the on-line availability of backup devices of reasonable performance and complexity. Methods of how to find functional units suitable for backup strategies will be discussed. To increase the efficiency of a reliable embedded processor structure, we use an application driven reduction strategy for additional test and backup components.
机译:嵌入式处理器通常用于对安全至关重要的应用中,例如汽车工程。因此,在长寿命内实现高度可靠性是至关重要的要求。与更强大的技术相比,先进的数字电路中与减小的特征尺寸相关的更高集成度和更低的信噪比使易受动态和静态故障影响的可能性更高。传统的容错设计技术有几个缺点。这样的一个例子是航空电子中使用的三重冗余方案成本高昂,而另一个例子是,由于只能在线识别和补偿一个永久性故障,因此第二个故障可能会被注意到。在本文中,我们提出了一种嵌入式处理器的方案,该方案通过有效地处理一系列瞬时故障来实现长期可靠性。它基于在线识别和使用回滚策略(在短时间内)修复非永久性故障。对于被认为是永久性的故障,我们将讨论使用(现场)可编程逻辑设备进行重新配置或自我修复的可能性和局限性。这需要具有合理性能和复杂性的备份设备的在线可用性。将讨论如何找到适合备份策略的功能单元的方法。为了提高可靠的嵌入式处理器结构的效率,我们将应用程序驱动的缩减策略用于其他测试和备份组件。

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