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Binary CorNET: Accelerator for HR Estimation From Wrist-PPG

机译:二进制基数:WRIST-PPG的HR估计加速器

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摘要

Research on heart rate (HR) estimation using wrist-worn photoplethysmography (PPG) sensors have progressed rapidly owing to the prominence of commercial sensing modules, used widely for lifestyle monitoring. Reported methodologies have been fairly successful in mitigating the effect of motion artifacts (MA) in ambulatory environment for HR estimation. Recently, a learning framework, CorNET, employing two-layer convolution neural networks (CNN) and two-layer long short-term network (LSTM) was successfully reported for estimating HR from MA-induced PPG signals. However, such a network topology with large number of parameters presents a challenge, towards low-complexity hardware implementation aimed at on-node processing. In this paper, we demonstrate a fully binarized network (bCorNET) topology and its corresponding algorithm-to-architecture mapping and energy-efficient implementation for HR estimation. The proposed framework achieves a MAE of 6.67 +/- 5.49 bpm when evaluated on 22 IEEE SPC subjects. The design, synthesized with ST65 nm technology library achieving 3GOPS@ 1MHz, consumes 56.1 mu J per window with occupied 1634K NAND2 equivalent cell area and had a latency of 32 ms when estimating HR every 2 s from PPG signals.
机译:由于商业传感模块的突出,使用腕带磨损的光增性血晶术(PPG)传感器的心率(HR)估计研究已经迅速进行了迅速推动的。报告的方法在减轻动作伪影(MA)在用于人力资源环境中的动作伪影(MA)的影响方面已经相当成功。最近,成功地报告了一种学习框架,基数,采用双层卷积神经网络(CNN)和两层长短期网络(LSTM),用于估计来自MA诱导的PPG信号的HR。然而,这种具有大量参数的网络拓扑呈现出挑战,朝着节点处理的低复杂性硬件实现。在本文中,我们展示了一个完全二值化的网络(BCORNET)拓扑及其对应于HR估计的相应算法 - 架构映射和节能实现。拟议的框架在22个IEEE SPC受试者中达到6.67 +/- 5.49 BPM的MAE。使用ST65 NM技术库合成的设计,实现3GOPS @ 1MHz,每窗消耗56.1μJ,占用的1634K NAND2等效电池区域,并且在从PPG信号估计HR时具有32 ms的延迟。

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