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不精确性与未来的计算。

Inexactness and a future of computing.

机构信息

Department of Computer Science and ECE, Rice University, 6100 Main Street, Houston, TX 77005, USA

出版信息

Philos Trans A Math Phys Eng Sci. 2014 Jun 28;372(2018):20130281. doi: 10.1098/rsta.2013.0281.

Abstract

As pressures, notably from energy consumption, start impeding the growth and scale of computing systems, inevitably, designers and users are increasingly considering the prospect of trading accuracy or exactness. This paper is a perspective on the progress in embracing this somewhat unusual philosophy of innovating computing systems that are designed to be inexact or approximate, in the interests of realizing extreme efficiencies. With our own experience in designing inexact physical systems including hardware as a backdrop, we speculate on the rich potential for considering inexactness as a broad emerging theme if not an entire domain for investigation for exciting research and innovation. If this emerging trend to pursuing inexactness persists and grows, then we anticipate an increasing need to consider system co-design where application domain characteristics and technology features interplay in an active manner. A noteworthy early example of this approach is our own excursion into tailoring and hence co-designing floating point arithmetic units guided by the needs of stochastic climate models. This approach requires a unified effort between software and hardware designers that does away with the normal clean abstraction layers between the two.

摘要

随着能源消耗等压力开始限制计算系统的增长和规模,设计者和用户不可避免地开始考虑以牺牲精度或准确性为代价来提高效率的前景。本文从一个角度探讨了接受这种创新计算系统的理念的进展,这种系统旨在设计为不精确或近似,以实现极端效率。我们以自己在设计包括硬件在内的非精确物理系统方面的经验为背景,推测如果将不精确性作为一个广泛的新兴主题,甚至是一个完整的研究领域来考虑,将会有丰富的潜力,以带来令人兴奋的研究和创新。如果这种追求不精确性的新兴趋势持续发展,那么我们预计将越来越需要考虑系统的协同设计,在这种设计中,应用领域的特征和技术特征以积极的方式相互作用。这种方法的一个值得注意的早期例子是我们自己在根据随机气候模型的需求定制和因此协同设计浮点运算单元方面的尝试。这种方法需要软件和硬件设计者之间的统一努力,消除两者之间通常的干净抽象层。

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