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A Synchronization-Based Hybrid-Memory Multi-Core Architecture for Energy-Efficient Biomedical Signal Processing

机译:基于同步的混合内存多核体系结构,用于高效节能的生物医学信号处理

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In the last decade, improvements on technology scaling have enabled the design of a novel generation of wearable bio-sensing monitors. These smart Wireless Body Sensor Nodes (WBSNs) are able to acquire and process biological signals, such as electrocardiograms, for periods of time extending from hours to days. The energy required for the on-node digital signal processing (DSP) is a crucial limiting factor in the conception of these devices. To address this design challenge, we introduce a domain-specific ultra-low power (ULP) architecture dedicated to bio-signal processing. The platform features a light-weight strategy to support different operating modes and synchronization among cores. Our approach effectively reduces the power consumption, harnessing the intrinsic parallelism and the workload requirements characterizing the target domain. Operations at low voltage levels are supported by a heterogeneous memory subsystem comprising a standard-cell based ultra-low voltage reliable partition. Experimental results show that, when executing real-world bio-signal DSP applications, a state-of-the-art multi-core architecture can improve its energy efficiency in up to 50 percent by utilizing our proposed approach, outperforming traditional single-core alternatives.
机译:在过去的十年中,技术规模的提高使新一代可穿戴生物传感显示器的设计成为可能。这些智能无线人体传感器节点(WBSN)能够在数小时至数天的时间内获取和处理生物信号,例如心电图。节点上数字信号处理(DSP)所需的能量是这些设备概念中的关键限制因素。为了解决这一设计挑战,我们引入了专用于生物信号处理的领域特定的超低功耗(ULP)架构。该平台采用轻量级策略,可支持不同的操作模式以及内核之间的同步。我们的方法利用固有的并行性和目标域的特征工作负载要求,有效地降低了功耗。异构存储子系统支持低电压级别的操作,该子系统包括基于标准单元的超低压可靠分区。实验结果表明,在执行现实世界的生物信号DSP应用时,最先进的多核体系结构可以利用我们提出的方法将能源效率提高多达50%,胜过传统的单核替代方案。

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