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Ultra-Low Power QRS Detection and ECG Compression Architecture for IoT Healthcare Devices

机译:物联网医疗设备的超低功耗QRS检测和ECG压缩架构

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An ultra-low power electrocardiogram (ECG) processing architecture with an adequate level of accuracy is a necessity for Internet of Things (IoT) medical wearable devices. This paper presents a novel real-time QRS detector and an ECG compression architecture for IoT healthcare devices. An absolute-value curve length transform (A-CLT) is proposed that effectively enhances the QRS complex detection with minimized hardware resources. The proposed architecture requires adders, shifters, and comparators only, and removes the need for any multipliers. QRS detection was accomplished by using adaptive thresholds in the A-CLT transformed ECG signal, and achieved a sensitivity of 99.37% and the predictivity of 99.38% when validated using Physionet ECG database. Furthermore, a lossless compression technique was incorporated into the proposed architecture that uses the ECG signal first derivative and entropy encoding. An average compression ratio of 2.05 was achieved when evaluated using MIT-BIH database. The proposed QRS detection architecture deals with almost all the ECG signal artifacts, such as low-frequency noise, baseline drift, and high-frequency interference with minimum hardware resources. The proposed QRS architecture was synthesized using 65-nm low-power process using standard-cell-based flow. The power consumption of the design was 6.5 nW while operating at a supply of 1 V and a frequency of 250 Hz. Moreover, the system could benefit from duty-cycling.
机译:具有足够准确度的超低功耗心电图(ECG)处理体系结构是物联网(IoT)医疗可穿戴设备的必要条件。本文针对物联网医疗设备提出了一种新颖的实时QRS检测器和ECG压缩架构。提出了一种绝对值曲线长度变换(A-CLT),它可以以最少的硬件资源有效地增强QRS复杂检测。所提出的体系结构仅需要加法器,移位器和比较器,并且不需要任何乘法器。 QRS检测是通过在A-CLT转换的ECG信号中使用自适应阈值来完成的,使用Physionet ECG数据库进行验证后,可实现99.37%的灵敏度和99.38%的可预测性。此外,将无损压缩技术并入了使用ECG信号一阶导数和熵编码的建议架构。使用MIT-BIH数据库评估时,平均压缩比为2.05。拟议中的QRS检测架构以最少的硬件资源处理几乎所有的ECG信号伪影,例如低频噪声,基线漂移和高频干扰。拟议的QRS架构是使用基于标准单元的流程使用65纳米低功耗工艺合成的。在1 V电源和250 Hz频率下工作时,该设计的功耗为6.5 nW。而且,该系统可以受益于占空比。

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