用物理模型约束深度学习,实现无接触血压精准监测
Physics-Constrained Deep Learning Model for Contactless Blood Pressure Monitoring from Triaxial Bodyseismography

- 融合三轴体震图与物理模型,自动筛选高质量心跳信号
- 在21人、162小时数据上实现低样本下的高精度血压估计
- 特别适合数据稀缺场景,提升实际应用中的鲁棒性
体震图(BCG)在无创长期血压监测中具有潜力,但传统信号易受人体-床体相互作用影响,导致时间或幅值轴上特征点偏移,且个体血流动力学差异造成表征错位,降低模型泛化能力。本文提出基于三轴体震图(BSG)的非侵入式血压估计框架Phy-BP。首先设计自适应质量控制算法,通过结合邻近搏动模式与通用心源性模板,筛选富含心源成分的信号段;其次建立人体-床系统三维波传播物理模型,并嵌入深度学习框架,刻画单次心源激励驱动下三轴信号间的内在耦合关系,使多轴特征在训练中对齐,增强对真实场景畸变的鲁棒性。在21名受试者共162小时医院级数据集上的实验表明,Phy-BP可动态剔除低质量测量,且通过跨轴物理一致性约束,即使在训练样本有限时也能提供可靠血压监测。
原文摘要 · Abstract (English)
Ballistocardiography (BCG) is promising for unobtrusive long-term blood pressure (BP) monitoring in laboratory settings, but traditional BCG signals are vulnerable to the variations in body-bed interaction with shifted fiducial points in temporal or amplitude axis, and BP varies with personal hemodynamic changes, causing misaligned representations that affect model generalizability and robustness. In this work, we propose a non-invasive BP estimation framework, Phy-BP, based on triaxial bodyseismography (BSG) as an extension of BCG. Firstly, an adaptive quality-control algorithm is designed to select BSG segments enriched with cardiogenic components by jointly considering neighboring beat patterns and universal cardiogenic templates. Furthermore, a physical model is established to describe 3D wave propagation in the body-bed system and is subsequently embedded into the deep learning model to characterize the intrinsic coupling among triaxial BSG signals driven by a single cardiogenic excitation. Thus, multi-axis features are aligned during model training, improving robustness against distortions in real scenarios. Experiments on a 162-hour hospital dataset collected from 21 subjects reveal that the proposed Phy-BP can dynamically filter out low-quality measurements, and the deep learning model training is constrained by physical consistency across different axes to provide faithful BP monitoring, especially when training samples are limited.
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