A fuzzy logic based dynamic reconfiguration scheme for optimal energy and throughput in symmetric chip multiprocessors

Muhammad Yasir Qadri, K. Mcdonald-Maier
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引用次数: 4

Abstract

Embedded systems architectures have traditionally often been investigated and designed in order to achieve a greater throughput combined with minimum energy consumption. With the advent of reconfigurable architectures it is now possible to support algorithms to find optimal solutions for an improved energy and throughput balance. As a result of ongoing research several online and offline techniques and algorithm have been proposed for hardware adaptation. This paper presents a novel coarse-grained reconfigurable symmetric chip multiprocessor (SCMP) architecture managed by a fuzzy logic engine that balances performance and energy consumption. The architecture incorporates reconfigurable level 1 (L1) caches, power gated cores and adaptive on-chip network routers to allow minimizing leakage energy effects for inactive components. A coarse grained architecture was selected as to be a focus for this study as it typically allows for fast reconfiguration as compared to the finegrained architectures, thus making it more feasible to be used for runtime adaption schemes. The presented architecture is analyzed using a set of OpenMP based parallel benchmarks and the results show significant improvements in performance while maintaining minimum energy consumption.
一种基于模糊逻辑的对称芯片多处理器能量和吞吐量优化动态重构方案
传统上,嵌入式系统架构的研究和设计通常是为了实现更大的吞吐量和最小的能耗。随着可重构架构的出现,现在可以支持算法来找到优化的解决方案,以改善能量和吞吐量平衡。由于正在进行的研究,已经提出了几种用于硬件适应的在线和离线技术和算法。本文提出了一种新的粗粒度可重构对称芯片多处理器(SCMP)体系结构,该体系结构由模糊逻辑引擎管理,以平衡性能和能耗。该架构集成了可重构的1级(L1)缓存、电源门控核心和自适应片上网络路由器,以最大限度地减少非活动组件的泄漏能量影响。选择粗粒度体系结构作为本研究的重点,因为与细粒度体系结构相比,粗粒度体系结构通常允许快速重新配置,从而使其更适合用于运行时适应方案。使用一组基于OpenMP的并行基准对所提出的体系结构进行了分析,结果显示在保持最低能耗的同时性能有了显著提高。
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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