SonicFFT: A system architecture for ultrasonic-based FFT acceleration

D. A. Patel, V. P. Bui, K. Chai, A. Lal, M. Aly
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引用次数: 11

Abstract

Fast Fourier Transform (FFT) is an essential algorithm for numerous scientific and engineering applications. It is key to implement FFT in a high-performance and energy-efficient manner. In this paper, we leverage the properties of ultrasonic wave propagation in silicon for FFT computation. We introduce SonicFFT: A system architecture for ultrasonic-based FFT acceleration. To evaluate the benefits of SonicFFT, a compact-model based simulation framework that quantifies the performance and energy of an integrated system comprising of digital computing components interfaced with an ultrasonic FFT accelerator has been developed. We also present mapping strategies to compute 2D FFT utilizing the accelerator. Simulation results show that SonicFFT achieves a $2317\times$ system-level energy-delay product benefits-a simultaneous $117.69\times$ speedup and $19.69\times$ energy reduction-versus state-of-the-art baseline all-digital configuration.
SonicFFT:基于超声的FFT加速系统架构
快速傅里叶变换(FFT)是许多科学和工程应用中必不可少的算法。以高性能和节能的方式实现FFT是关键。在本文中,我们利用超声波在硅中的传播特性进行FFT计算。我们介绍了SonicFFT:一个基于超声的FFT加速系统架构。为了评估SonicFFT的优势,开发了一个基于紧凑模型的仿真框架,该框架量化了由数字计算组件与超声波FFT加速器接口组成的集成系统的性能和能量。我们还提出了利用加速器计算二维FFT的映射策略。仿真结果表明,与最先进的基线全数字配置相比,SonicFFT实现了2317美元的系统级能量延迟产品效益-同时实现了117.69美元的加速和19.69美元的能量降低。
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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