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PX-CGRA: Polymorphic approximate coarse-grained reconfigurable architecture

机译:PX-CGRA:多态性近似粗粒可重新配置架构

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Coarse-Grained Reconfigurable Architectures (CGRAs) provide tradeoff between the energy-efficiency of Application Specific Integrated Circuits (ASICs) and the flexibility of General Purpose Processors (GPPs). State-of-the-art CGRAs only support exact architectures and precise application executions. However, a majority of the streaming applications such as multimedia and digital signal processing, which are amenable to CGRAs, are inherently error resilient. Therefore, these applications can greatly benefit from the emerging trend of Approximate Computing that leverages this error-resiliency to provide higher energy efficiency proportional to the tolerable accuracy loss (can even be constrained). This paper, for the first time, introduces the novel concept of Polymorphic Approximate CGRA (PX-CGRA) that employs heterogeneous tiles of Polymorphic-Approximated ALU Clusters (PACs) connected in a 2-D mesh style connection. These PACs can implement different approximate modes as well as accurate modes depending upon their selected configuration as per the run-time requirements of executing applications. For designing an efficient PX-CGRA, we propose a bottom-up design flow. In addition, the flow of application mapping on PX-CGRA is discussed including accuracy-level mapping, scheduling, and binding steps. To comprehensively evaluate the efficacy of the proposed CGRA, the complete PX-CGRA architecture in different sizes as well as with different PACs configurations are synthesized using a 15-nm FinFET technology. Our results show up to 15%-45% energy efficiency improvement for 5%-35% output quality degradation, respectively, when compared to the state-of-the-art exact-mode CGRA. Our proposed architecture and design methodology enable a new era of accuracy-configurable CGRAs to provide significant energy gains.
机译:粗粒度可重配置架构(CGRAS)在应用特定集成电路(ASIC)的能量效率和通用处理器(GPP)的灵活性之间提供权衡。最先进的CGRAS仅支持精确的架构和精确的应用程序执行。然而,大多数流媒体应用,例如多媒体和数字信号处理,其可用于CGRA,是固有的误差弹性。因此,这些应用可以从近似计算的新出现趋势极大地受益,其利用这种误差弹性来提供与可容许精度损耗成比例的更高的能效(甚至可以约束)。本文首次介绍了多态性近似CGRA(PX-CGRA)的新颖概念,该概念采用了在2-D网格样式连接中连接的多晶态近似ALU集群(PACS)的异质瓷砖。根据执行应用程序的运行时间要求,这些PACS可以实现不同的近似模式以及准确的模式,具体取决于其所选配置。为了设计高效的PX-CGRA,我们提出了自下而上的设计流程。另外,讨论了PX-CGRA上的应用程序映射的流程,包括精度级映射,调度和绑定步骤。为了全面评估所提出的CGRA的功效,使用15 nm FinFET技术合成不同尺寸的完整PX-CGRA架构以及不同的PACS配置。与最先进的精确模式CGRA相比,我们的结果分别显示出5 % - 35 %的输出质量劣化的能效提高。我们所提出的架构和设计方法使新的精度可配置CGRA的新时代能够提供显着的能量收益。

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