基于近似数据重用的处理器:图像压缩的案例研究

Hisashi Osawa, Yuko Hara-Azumi
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引用次数: 2

摘要

在大多数嵌入式系统中,如何在严格的设计约束下设计最终应用程序的加速器一直是一个关键问题。在本文中,我们采用一种新的计算范式“近似计算”来解决这个问题。更具体地说,我们的工作集中在和重用最近产生的结果与当前结果足够相似的计算上——“近似数据重用”。这个概念可以通过跳过指令来减少计算量。我们从硬件(架构)和软件(编译)两方面全面地开发加速器设计,以实现足够的加速和节能,同时以一些错误为代价减轻面积开销。本文主要提供了三个贡献:适用于各种处理器的架构扩展,即使在严格的电路面积限制下,我们的方法的重要特征参数化,以便近似数据重用的程度可以很容易地针对不同的应用进行调整,并通过我们的案例研究对关键参数的组合进行详尽的评估。用一个实际应用(图像压缩)定量地进行了一个案例研究,以证明我们的方法比传统方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Approximate data reuse-based processor: a case study on image compression
In most embedded systems, how to design accelerators of end applications under stringent design constraints has been a crucial issue. In this paper, we employ a new computation paradigm "approximate computing" to resolve this issue. More specifically, our work focuses on and reuses computations which have recently produced results that are expected to be similar enough to the current ones - "approximate data reuse." This concept enables to reduce computations by skipping instructions. We develop accelerator designs with this concept holistically from both hardware (architecture) and software (compilation) to achieve sufficient speedup and energy saving while mitigating the area overhead at the cost of some error. This paper provides mainly three contributions: architectural extensions applicable to a variety of processors even under a stringent constraint on circuit area, parameterization of important features of our method so that the degree of approximate data reuse can be easily tuned for different applications, and exhaustive evaluations on combinations of key parameters through our case study. A case study was quantitatively conducted using a realistic application (image compression) to demonstrate the effectiveness of our method over conventional ones.
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