Day 2: Mini-tutorial: Challenges to the design and optimization of cyber-physical systems

Zebo Peng
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Abstract

Summary form only given. We are witnessing an exponential increase of cyber-physical systems where the computational components interact with the physical world in a tightly manner. More and more of these systems are nowadays used for safety-critical applications, such as automotive electronics and medical equipment. These safety-critical applications impose stringent requirements on reliability, efficiency, low-power and testability of the underlying VLSI hardware implementation. With silicon technology scaling, however, VLSI circuits is built with smaller transistors, perform at higher clock frequencies, run at lower voltage levels, and operate very often at higher temperature. All these have major negative impact on reliability, performance, power-efficiency and testability. We are therefore facing the challenges of how to address all these technical problems and their interplay with the stringent real-time requirements imposed by many safety-critical applications. This talk will discuss the design of such cyber-physical systems by considering both fault-tolerance and real-time requirements at the same time. It will describe several key challenges and some emerging solutions to the design and optimization of such systems. In particular, it will present time-redundancy based fault-tolerance techniques to address transient faults which have become more and more common in nano-scale technology. It will also describe several design tradeoffs including hardware/software co-design solutions for the optimization of cyber-physical systems.
第2天:迷你教程:网络物理系统设计和优化的挑战
只提供摘要形式。我们正在见证网络物理系统的指数级增长,其中计算组件以紧密的方式与物理世界相互作用。如今,这些系统越来越多地用于安全关键应用,如汽车电子和医疗设备。这些安全关键型应用对底层VLSI硬件实现的可靠性、效率、低功耗和可测试性提出了严格的要求。然而,随着硅技术的缩放,VLSI电路用更小的晶体管构建,在更高的时钟频率下运行,在更低的电压水平下运行,并且经常在更高的温度下运行。所有这些都对可靠性、性能、功率效率和可测试性产生了重大的负面影响。因此,我们面临着如何解决所有这些技术问题以及它们与许多安全关键应用所施加的严格实时要求之间的相互作用的挑战。本讲座将讨论通过同时考虑容错和实时需求来设计这样的网络物理系统。它将描述几个关键的挑战和一些新兴的解决方案,以设计和优化这些系统。特别是,它将提出基于时间冗余的容错技术,以解决在纳米技术中越来越常见的瞬态故障。它还将描述一些设计权衡,包括用于优化网络物理系统的硬件/软件协同设计解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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