在线生物医学信号分析的低功耗处理器架构探索

A. Dogan, J. Constantin, David Atienza Alonso, A. Burg, L. Benini
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引用次数: 24

摘要

在这项研究中,作者探索了顺序和并行处理架构,利用定制的超低功耗(ULP)处理核心,延长健康监测系统的使用寿命,其中存在缓慢的生物信号事件和高度并行计算。为此,提出了单核和多核架构并进行了比较。单核架构由一个ULP处理核心、一个指令存储器(IM)和一个数据存储器(DM)组成,而多核架构由几个ULP处理核心、每个核心的单独IM、一个共享DM和核心与DM之间的互连交叉条组成。这些架构在利用近阈值计算的同时,比较了在线生物医学信号分析不同目标工作负载的功耗/性能权衡。结果表明,相对于单核架构,多核解决方案在高计算需求(167 MOps/s)下功耗降低62%,而在功耗以泄漏为主的极低计算需求下功耗提高46%。此外,作者还表明,与参考微控制器ISA (PIC24)相比,使用简化指令集架构(ISA)的ULP处理核心可节省54%的能源。
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Low-power processor architecture exploration for online biomedical signal analysis
In this study, the authors explore sequential and parallel processing architectures, utilising a custom ultra-low-power (ULP) processing core, to extend the lifetime of health monitoring systems, where slow biosignal events and highly parallel computations exist. To this end, a single- and a multi-core architecture are proposed and compared. The single-core architecture is composed of one ULP processing core, an instruction memory (IM) and a data memory (DM), while the multi-core architecture consists of several ULP processing cores, individual IMs for each core, a shared DM and an interconnection crossbar between the cores and the DM. These architectures are compared with respect to power/performance trade-offs for different target workloads of online biomedical signal analysis, while exploiting near threshold computing. The results show that with respect to the single-core architecture, the multi-core solution consumes 62% less power for high computation requirements (167 MOps/s), while consuming 46% more power for extremely low computation needs when the power consumption is dominated by leakage. Additionally, the authors show that the proposed ULP processing core, using a simplified instruction set architecture (ISA), achieves energy savings of 54% compared to a reference microcontroller ISA (PIC24).
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