Ahmmed Parvez, Garceau Emily, Latif Tahmid, Brewer Alec, Dieffenderfer James, Valero-Sarmiento Jose Manuel, Pamula Venkata Rajesh, Van Helleputte Nick, Van Hoof Chris, Verhelst Marian, Bozkurt Alper
IEEE Trans Biomed Eng. 2025 May;72(5):1596-1604. doi: 10.1109/TBME.2024.3513462. Epub 2025 Apr 22.
Photoplethysmography (PPG) has emerged as a highly convenient and non-invasive technique for assessing heart rate and its variability in wearable health monitoring devices. However, a drawback lies in the energy demand of PPG systems which consequently increases the average power consumption of the wearable devices integrated with PPG sensors. In this paper, we present our efforts towards packaging a novel compressed-sensing (CS) based ultra-low power PPG application-specific integrated circuit (ASIC) into a wearable device and testing it through a preclinical human study. The system comprises a custom-designed PPG analog front-end circuit, integrated with a digital back-end to implement CS, a light source-detector pair, and a commercial off-the-shelf microcontroller for Bluetooth Low Energy (BLE) based wireless data transfer. Two circular PCBs, a general-purpose main board containing the microcontroller and a plugin board housing the ASIC interfacing components, fit into a wristband form factor. This modular architecture of the wristband platform allows for the incorporation of other environmental sensors for future correlated sensing studies between health and the environment. The PPG ASIC consumes 172 $\bm {\mu }$ W power to extract heart rate from the sparse PPG signal whereas the whole system consumes 1.66 mW power for continuous streaming of heart rate data over the BLE radio which can be further duty cycled. The preclinical trial of the platform demonstrated its efficacy in assessing accurate heart rate in comparison to commercial PPG and electrocardiography systems. This work presents the first-ever demonstration of a wearable wristband with CS based PPG performed on a chip.
光电容积脉搏波描记法(PPG)已成为一种高度便捷且无创的技术,用于在可穿戴健康监测设备中评估心率及其变异性。然而,PPG系统的能量需求存在一个缺点,这会增加集成了PPG传感器的可穿戴设备的平均功耗。在本文中,我们展示了将一种基于新型压缩感知(CS)的超低功耗PPG专用集成电路(ASIC)封装到可穿戴设备中,并通过临床前人体研究对其进行测试的工作。该系统包括一个定制设计的PPG模拟前端电路,与一个用于实现CS的数字后端集成在一起,一个光源 - 探测器对,以及一个用于基于低功耗蓝牙(BLE)进行无线数据传输的商用现成微控制器。两个圆形印刷电路板,一个包含微控制器的通用主板和一个容纳ASIC接口组件的插件板,适配到手环外形尺寸中。手环平台的这种模块化架构允许纳入其他环境传感器,用于未来健康与环境之间的相关传感研究。PPG ASIC从稀疏的PPG信号中提取心率时消耗172 $\bm {\mu }$ W的功率,而整个系统通过BLE无线电连续传输心率数据时消耗1.66 mW的功率,并且可以进一步进行占空比控制。该平台的临床前试验表明,与商用PPG和心电图系统相比,它在评估准确心率方面具有有效性。这项工作首次展示了在芯片上实现的基于CS的PPG可穿戴手环。