Isolation-based decorrelation of stochastic circuits

Pai-Shun Ting, J. Hayes
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引用次数: 35

Abstract

Stochastic computing (SC) performs arithmetic on randomized bit-streams called stochastic numbers (SNs) using standard logic circuits. SC has many appealing features such as error tolerance, low power, and low area cost. However, it suffers from severe accuracy loss due to correlation or insufficient randomness. SNs can be decorrelated by regenerating them from independent random sources. This is the preferred decorrelation method mentioned in the literature, but it often entails huge area and delay overhead. An attractive alternative is isolation-based decorrelation, which is the focus of this research. Isolation works by inserting delays (isolators) into a stochastic circuit to eliminate undesirable interactions among its SNs. Surprisingly, although it has far lower cost than regeneration, isolation has not been studied systematically before, hindering its practical use. The paper first examines the basic characteristics of SC isolation. We show that unless carefully used, it can result in excessive isolator numbers or unexpectedly corrupt a circuit's function. We therefore formally characterize the behavior of an isolation-decorrelated circuit, and derive conditions for correct deployment of isolators. We then describe the first isolator placement algorithm designed to minimize the number of isolators. Finally, we present supporting data obtained from simulation experiments on representative circuits.
基于隔离的随机电路去相关
随机计算(SC)使用标准逻辑电路对称为随机数(sn)的随机比特流进行运算。SC有许多吸引人的特点,如容错、低功耗和低面积成本。然而,由于相关性或随机性不足,它会造成严重的准确性损失。SNs可以通过从独立的随机来源重新生成它们来解除相关性。这是文献中提到的首选的去相关方法,但它往往需要巨大的面积和延迟开销。一个有吸引力的替代方案是基于隔离的去相关,这是本研究的重点。隔离的工作原理是在随机电路中插入延迟(隔离器),以消除其SNs之间的不良相互作用。令人惊讶的是,虽然它的成本远低于再生,但之前并没有系统地研究过隔离,阻碍了它的实际应用。本文首先考察了SC隔离的基本特征。我们表明,除非小心使用,否则可能导致隔离器数量过多或意外地破坏电路的功能。因此,我们正式描述了隔离去相关电路的行为,并推导了正确部署隔离器的条件。然后,我们描述了第一种隔离器放置算法,旨在最大限度地减少隔离器的数量。最后,我们给出了从代表性电路的仿真实验中获得的支持数据。
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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