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Markov chain algorithms: a template for building future robust low-power systems

机译:马尔可夫链算法:构建未来强大的低功耗系统的模板

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摘要

Although computational systems are looking towards post CMOS devices in the pursuit of lower power, the expected inherent unreliability of such devices makes it difficult to design robust systems without additional power overheads for guaranteeing robustness. As such, algorithmic structures with inherent ability to tolerate computational errors are of significant interest. We propose to cast applications as stochastic algorithms based on Markov chains (MCs) as such algorithms are both sufficiently general and tolerant to transition errors. We show with four example applications—Boolean satisfiability, sorting, low-density parity-check decoding and clustering—how applications can be cast as MC algorithms. Using algorithmic fault injection techniques, we demonstrate the robustness of these implementations to transition errors with high error rates. Based on these results, we make a case for using MCs as an algorithmic template for future robust low-power systems.
机译:尽管计算系统在追求更低的功耗时正在寻求后置CMOS器件,但是这种器件的固有固有不可靠性使其难以设计出坚固的系统,而没有额外的功耗来保证坚固性。因此,具有固有的容忍计算错误能力的算法结构引起了人们的极大兴趣。我们建议将应用程序转换为基于Markov链(MC)的随机算法,因为此类算法既足够通用又可以容忍过渡错误。我们以四个示例应用程序为例-布尔可满足性,排序,低密度奇偶校验解码和聚类-如何将应用程序转换为MC算法。使用算法故障注入技术,我们证明了这些实现在高错误率下转换错误的鲁棒性。基于这些结果,我们为使用MC作为未来强大的低功耗系统的算法模板提供了理由。

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