基于分层合成和温度自适应电压标度的可调随机计算

Neel Gala, V. Devanathan, V. Visvanathan, Virat Gandhi, V. Kamakoti
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引用次数: 2

摘要

随着移动设备计算能力的提高,节省电池电量(或延长电池寿命)变得至关重要。再加上在这些移动设备上运行的大多数应用程序的容错性越来越强,这使得人们对随机(或不精确)计算产生了极大的兴趣。在本文中,我们提出了一个框架,其中器件可以在不同的容错模式下工作,同时显着降低功耗。此外,在非常深的亚微米技术中,温度对性能和功率都起着至关重要的作用。提出的框架提出了一种新的分层综合优化,结合温度感知电源和体偏置电压缩放,使设计在各种“可调谐”容错模式下运行。我们在工业28nm低泄漏技术节点的H.264解码器块上实现了所提出的技术,并证明总功耗降低了30%至45%,同时将工作模式从精确计算转变为不准确/容错计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Tunable stochastic computing using layered synthesis and temperature adaptive voltage scaling
With increasing computing power in mobile devices, conserving battery power (or extending battery life) has become crucial. This together with the fact that most applications running on these mobile devices are increasingly error tolerant, has created immense interest in stochastic (or inexact) computing. In this paper, we present a framework wherein, the devices can operate at varying error tolerant modes while significantly reducing the power dissipated. Further, in very deep sub-micron technologies, temperature has a crucial role in both performance and power. The proposed framework presents a novel layered synthesis optimization coupled with temperature aware supply and body bias voltage scaling to operate the design at various “tunable” error tolerant modes. We implement the proposed technique on a H.264 decoder block in industrial 28nm low leakage technology node, and demonstrate reductions in total power varying from 30% to 45%, while changing the operating mode from exact computing to inaccurate/error-tolerant computing.
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