English

Trade-Offs in FMCW Radar-Based Respiration and Heart Rate Variability

Emerging Technologies 2026-03-11 v1 Signal Processing

Abstract

This study presents a comprehensive experimental assessment of a low-cost frequency-modulated continuous-wave (FMCW) multiple-input multiple-output (MIMO) radar for non-contact vital sign monitoring, focusing on respiratory rate (RR) and heart rate (HR) estimation. The influence of sensing distance and number of transmitted chirps on measurement accuracy is systematically quantified. Results exhibit a U-shaped error profile with optimal performance near 70 cm70~cm, achieving mean absolute errors of 0.8 bpm0.8~bpm for RR and 3.2 bpm3.2~bpm for HR. Accuracy deteriorates at short (<60 cm<60~cm) and long (>100 cm>100~cm) distances due to multipath, near-field, and signal-to-noise effects. Increasing chirp count enhances performance: RR errors converge asymptotically for 96\geq96 chirps, while HR requires at least 96 chirps for stable detection. Variability metrics, including heart and respiratory rate variability, remain less accurate (>15>15--30%30\% error), indicating limited capability in capturing instantaneous fluctuations. These findings define a fundamental trade-off: the radar ensures robust estimation of average RR and HR but exhibits restricted precision in high-resolution beat-to-beat and breath-to-breath monitoring.

Keywords

Cite

@article{arxiv.2603.09791,
  title  = {Trade-Offs in FMCW Radar-Based Respiration and Heart Rate Variability},
  author = {Silvia Mura and Davide Scazzoli and Lorenzo Fineschi and Maurizio Magarini},
  journal= {arXiv preprint arXiv:2603.09791},
  year   = {2026}
}

Comments

to be published in EAI BODYNETS 2025