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Updated: Oct 10, 2026

Software for Analysis of Heart Rate and Blood Pressure Time-series Data from the Valsalva Maneuver
Published on: June 27, 2025
TPF-BP: A Three-Stage Physiology-Guided Self-Supervised Transfer Learning Framework for Personalized Blood Pressure
Abstract:
Personalized and continuous cuffless blood pressure (BP) monitoring using photoplethysmography (PPG) is a critical requirement for next-generation wearable healthcare systems. Despite recent progress, existing PPG-based learning models exhibit limited generalization and personalization across individuals, hindering robust real-world deployment. To overcome these limitations, we propose TPF-BP, a novel self-supervised transfer learning framework that integrates physiological priors into representation learning. Specifically, a physiology-guided masked autoencoder is employed for self-supervised pre-training to enhance latent feature extraction from PPG signals and their derivatives, followed by a homologous triple-branch model for sequential supervised pre-training and personalized fine-tuning. Extensive experiments demonstrate that four base models trained with TPF-BP reduce the mean absolute errors of systolic and diastolic BP estimation by an average of 7.66% and 5.78%, respectively, in few-shot transfer scenarios across three public datasets and one self-collected dataset. Additionally, we publicly release CRHE, our self-collected multi-wavelength, dual-24h PPG-BP dataset, along with its benchmark results. The dataset features circadian rhythm annotations and was collected using wearable devices and ambulatory BP monitors. Together, TPF-BP and CRHE provide essential methodological and data resources to advance intelligent physiological modeling and personalized health monitoring. The dataset is publicly available at https://github.com/FDU-Bio-Monitoring/CRHE-Long-Term-PPG-BP-Dataset.
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Monitoring Both Arms:
Monitoring BP in both arms during the initial assessment is advisable, as the systolic value may differ by five to ten mm Hg between arms. For subsequent BP assessments, use the arm with the higher reading.