arXiv:2505.04172eess.IVcs.HC2025-05被引 4

首个开源智能戒指心血管数据集,助力无创生理信号精准监测

A Dataset and Toolkit for Multiparameter Cardiovascular Physiology Sensing on Rings

  • 构建双光路智能戒指数据集,含多模态传感信号与生理标注
  • 在7类活动中实现优于商用设备的生理参数估计精度
  • 配套开源工具包,适合健康传感与可穿戴设备研究者使用

智能戒指为持续、无感监测心血管生理信号提供了便捷途径。然而,硬件与可靠参数估计方法之间仍存在差距,部分原因在于缺乏公开数据集和标准化分析工具。本文提出τ-Ring,首个面向心血管生理感知的开源戒指数据集。数据集包含红外与红光通道的光电体积脉搏波信号及三轴加速度数据,来自两种光学路径(反射式与透射式)的戒指,涵盖34名受试者28.21小时的原始数据,覆盖七种活动场景,包括静止、运动及刺激诱发的异常生理状态,并标注了心率、呼吸率、血氧饱和度和血压四类真值标签。利用我们提出的RingTool工具包,评估了三种经典物理模型与四种前沿深度学习方法。结果表明,性能优于商用戒指,在心率、呼吸率、血氧饱和度及收缩压/舒张压估计上分别达到5.18 BPM、2.98 BPM、3.22%以及13.33/7.56 mmHg的最低平均绝对误差。开源数据集与工具包旨在推动戒指式心血管健康感知领域的研究与社区协作。

原文摘要 · Abstract (English)

Smart rings offer a convenient way to continuously and unobtrusively monitor cardiovascular physiological signals. However, a gap remains between the ring hardware and reliable methods for estimating cardiovascular parameters, partly due to the lack of publicly available datasets and standardized analysis tools. In this work, we present $τ$-Ring, the first open-source ring-based dataset designed for cardiovascular physiological sensing. The dataset comprises photoplethysmography signals (infrared and red channels) and 3-axis accelerometer data collected from two rings (reflective and transmissive optical paths), with 28.21 hours of raw data from 34 subjects across seven activities. $τ$-Ring encompasses both stationary and motion scenarios, as well as stimulus-evoked abnormal physiological states, annotated with four ground-truth labels: heart rate, respiratory rate, oxygen saturation, and blood pressure. Using our proposed RingTool toolkit, we evaluated three widely-used physics-based methods and four cutting-edge deep learning approaches. Our results show superior performance compared to commercial rings, achieving best MAE values of 5.18 BPM for heart rate, 2.98 BPM for respiratory rate, 3.22\% for oxygen saturation, and 13.33/7.56 mmHg for systolic/diastolic blood pressure estimation. The open-sourced dataset and toolkit aim to foster further research and community-driven advances in ring-based cardiovascular health sensing.

智能戒指生理监测多参数传感开源数据集

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