HomeElectronics NewsMeasuring Heart And Breathing Without Sensors

Measuring Heart And Breathing Without Sensors

Radar can watch heartbeats and breathing without touching the body, but walls and moving objects can hide signals. New methods make tracking more accurate.

Study: A radar vital signs detection method in complex environments. Image Credit: Terelyuk/Shutterstock.com
Study: A radar vital signs detection method in complex environments. Image Credit: Terelyuk/Shutterstock.com

Tracking heart rate and respiration without attaching sensors to the body could improve healthcare, smart homes, and vehicle monitoring. But real-world environments make this challenging. Reflections from walls, furniture, and moving objects often overwhelm radar signals, making it difficult to identify the correct person. Even when the target is detected, breathing produces strong periodic signals that interfere with the weaker heartbeat signal. Conventional clutter-suppression methods can remove the slow chest movements that carry vital-sign information, reducing accuracy and reliability.

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To address these issues, researchers at Xiamen University in Xiamen, China have developed two complementary algorithms. The first, the Matrix Coefficient Selection Method (MCSM), works in the range-Doppler domain to locate the target. It suppresses static clutter and low-frequency noise, then applies autocorrelation to identify the distance bin most likely to contain periodic vital-sign motion. This approach improves accuracy and stability when multiple people or objects are present. The second algorithm, Recursive Least Squares Respiratory Harmonic Suppression (RLSRHS), works in the frequency domain. It adaptively filters out respiratory harmonics without manual tuning, allowing the weaker heartbeat signal to be measured reliably even as breathing patterns change.

The methods were tested using a 77 GHz FMCW radar system. Simulation studies showed that MCSM reduced distance errors by about 40 percent compared with conventional techniques, while RLSRHS improved heart-rate detection accuracy to 83 percent. In indoor environments with strong reflections and moving objects, radar measurements closely matched readings from ECG monitors, wearable devices, and respiratory sensors, with an average error of around 4 percent. Simple post-processing, like median filtering, further stabilized heart-rate readings over longer periods.

By addressing both target localization and frequency-domain interference, these algorithms make radar-based vital-sign monitoring more accurate in environments that previously challenged such systems. While tested indoors, the methods could also be applied in smart homes, vehicles, and other settings where contact-free monitoring is useful.

Nidhi Agarwal
Nidhi Agarwal
Nidhi Agarwal is a Senior Technology Journalist at Electronics For You, specialising in embedded systems, development boards, and IoT cloud solutions. With a Master’s degree in Signal Processing, she combines strong technical knowledge with hands-on industry experience to deliver clear, insightful, and application-focused content. Nidhi began her career in engineering roles, working as a Product Engineer at Makerdemy, where she gained practical exposure to IoT systems, development platforms, and real-world implementation challenges. She has also worked as an IoT intern and robotics developer, building a solid foundation in hardware-software integration and emerging technologies. Before transitioning fully into technology journalism, she spent several years in academia as an Assistant Professor and Lecturer, teaching electronics and related subjects. This background reflects in her writing, which is structured, easy to understand, and highly educational for both students and professionals. At Electronics For You, Nidhi covers a wide range of topics including embedded development, cloud-connected devices, and next-generation electronics platforms. Her work focuses on simplifying complex technologies while maintaining technical accuracy, helping engineers, developers, and learners stay updated in a rapidly evolving ecosystem.

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