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Significance driven computation

机译:重要性驱动计算

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摘要

In this paper we present a design methodology for algorithm/architecture co-design of a voltage-scalable, process variation aware motion estimator based on significance driven computation. The fundamental premise of our approach lies in the fact that all computations are not equally significant in shaping the output response of video systems. We use a statistical technique to intelligently identify these significantot-so-significant computations at the algorithmic level and subsequently change the underlying architecture such that the significant computations are computed in an error free manner under voltage over-scaling. Furthermore, our design includes an adaptive quality compensation (AQC) block which "tunes" the algorithm and architecture depending on the magnitude of voltage over-scaling and severity of process variations. Simulation results show average power savings of ~ 33% for the proposed architecture when compared to conventional implementation in the 90 nm CMOS technology.The maximum output quality loss in terms of Peak Signal to Noise Ratio (PSNR) was ~ 1 dB without incurring any throughput penalty.
机译:在本文中,我们提出了一种基于重要性驱动计算的电压可缩放,过程变化感知运动估计器的算法/体系结构协同设计的设计方法。我们的方法的基本前提是,在塑造视频系统的输出响应方面,所有计算都没有同等重要的事实。我们使用统计技术在算法级别智能地识别这些重要/不太重要的计算,然后更改基础架构,以便在电压超标情况下以无错误的方式计算重要计算。此外,我们的设计还包括一个自适应质量补偿(AQC)模块,该模块根据电压超标幅度和工艺变化的严重性来“调整”算法和体系结构。仿真结果表明,与90 nm CMOS技术中的常规实现相比,该架构的平均功耗节省了〜33%。就峰值信噪比(PSNR)而言,最大输出质量损失为〜1 dB,而不会产生任何吞吐量罚款。

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