Sep 2026· Italian National Conference on Sensors· Vol 26· 0 citations· 30 references
Medicine
TL;DR
A signal processing framework that addresses the challenge of accurate heart rate estimation through three integrated stages, providing a practical solution for reliable radar-based heart rate monitoring without requiring subject-specific calibration or specialized hardware modifications.
Abstract
Non-contact vital sign monitoring using millimeter-wave radar has emerged as a promising alternative to contact-based devices for continuous healthcare and elderly care applications. However, accurate heart rate estimation remains challenging because the weak cardiac-induced chest displacement is approximately an order of magnitude smaller than respiratory motion, and its fundamental frequency is frequently masked by higher-order respiratory harmonics. Here we propose a signal processing framework that addresses this challenge through three integrated stages: a slow-time phase correlation method that enhances the signal-to-noise ratio by coherently aggregating vital sign energy from adjacent range bins; an adaptive harmonic matching filtering approach based on complementary ensemble empirical mode decomposition that isolates and suppresses respiratory harmonic interference; and autocorrelation-based heart rate estimation. Experimental results obtained with a 77 GHz FMCW radar demonstrate that the proposed method achieves heart rate estimates within 5% error of reference wearable sensors in the presence of respiratory harmonics, with robustness confirmed through long-duration testing. This framework provides a practical solution for reliable radar-based heart rate monitoring without requiring subject-specific calibration or specialized hardware modifications.
Reliable cardiac monitoring in daily work environments could support applications such as stress assessment and mental workload tracking. Radar sensing provides a promising contactless solution by capturing subtle chest motion without requiring wearable devices. However, many existing methods assume quasi-static condit...
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As the demand for isolation care increases, clinical practice requires non-contact, low-interference, long-term vital sign monitoring. Remote photoplethysmography (rPPG), infrared thermography (IRT), and pyroelectric infrared sensors (PIR) have been used for vital sign measurement but are susceptible to occlusion and m...
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