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The StageNet fabric for constructing resilient multicore systems

机译:用于构建弹性多核系统的齿龈面料

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Scaling of CMOS feature size has long been a source of dramatic performance gains. However, the reduction in voltage levels has not been able to match this rate of scaling, leading to increasing operating temperatures and current densities. Given that most wearout mechanisms that plague semiconductor devices are highly dependent on these parameters, significantly higher failure rates are projected for future technology generations. Consequently, high reliability and fault tolerance, which have traditionally been subjects of interest for high-end server markets, are now getting emphasis in the mainstream desktop and embedded systems space. The popular solution for this has been the use of redundancy at a coarse granularity, such as dual/triple modular redundancy. In this work, we challenge the practice of coarse-granularity redundancy by identifying its inability to scale to high failure rate scenarios and investigating the advantages of finer-grained configurations. To this end, this paper presents and evaluates a highly reconfigurable multicore architecture, named StageNet (SN), that is designed with reliability as its first class design criteria. SN relies on a reconfigurable network of replicated processor pipeline stages to maximize the useful lifetime of a chip, gracefully degrading performance towards the end of life. Our results show that the proposed SN architecture can perform nearly 50% more cumulative work compared to a traditional multicore.
机译:CMOS特征尺寸的缩放一直是戏剧性的性能提升的源泉。然而,在电压水平的降低一直没有能够匹配缩放这样的速度,从而提高工作温度和电流密度。鉴于大多数耗损机制,瘟疫半导体器件高度依赖于这些参数,显著较高的故障率预计为未来的技术世代。因此,高可靠性和容错性,它历来的高端服务器市场的利益主体,现在越来越重视在主流台式机和嵌入式系统空间。这种流行的解决方案是使用冗余的粗粒度,如双/三模冗余。在这项工作中,我们通过识别它无法规模高失败率的情况和调查细粒度配置的优势,挑战粗粒度冗余的做法。为此,本文提出并评估一个高度可重构多核架构,命名StageNet(SN),其被设计与可靠性作为其第一个类的设计标准。 SN依靠复制处理器的流水线级的可重新配置的网络上以最大化芯片的使用寿命,对寿命末期摆好降低性能。我们的研究结果表明,该SN架构可以比传统的多核执行近50%的累计工作。

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