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Detecting Motion in a Room Using a Dynamic Metasurface Antenna

Sensing motion and distinguishing its source as human or nonhuman, with high precision, has tremendous applications in a variety of areas from health monitoring to energy efficiency. One strategy to achieve this goal is to detect the small motion of breathing, which is a consistent indicator of huma...

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Published in:IEEE access 2020, Vol.8, p.222496-222505
Main Authors: Oesterling, Alexander X., Imani, Mohammadreza F., Mizrahi, Oren S., Gollub, Jonah N., Smith, David R.
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description Sensing motion and distinguishing its source as human or nonhuman, with high precision, has tremendous applications in a variety of areas from health monitoring to energy efficiency. One strategy to achieve this goal is to detect the small motion of breathing, which is a consistent indicator of human presence. Among the many smart sensing schemes proposed, microwave and RF sensors have shown great promise due to their simplicity, privacy, and effective range. In this paper, we propose the use of a dynamic metasurface antenna (DMAs) as an alternative hardware platform for sensing motion inside a residential setting using microwave signals. The proposed device is a single-port planar cavity that excites an array of electronically-tunable metamaterial elements. The DMA can generate spatially diverse patterns at a single frequency, avoiding complexities related to wideband operation or high hardware costs of antenna arrays. We demonstrate that it is capable of detecting minute movements, such as breathing emulated by a mannequin, to distinguish human presence. This motion can be detected whether the target is in the the sensor's direct line of sight or out of the direct line of sight. Furthermore, we show that the DMA sensing platform requires a single noise-floor calibration and can operate in different room geometries or configurations (e.g. when furniture is displaced). The proposed DMA-sensor with its single frequency operation and simple hardware is an appealing alternative hardware for intruder detection, human presence detection/activity recognition in smart homes, or seamless health monitoring.
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subjects Activity recognition
Antenna arrays
Antenna radiation patterns
Antennas
Biomedical optical imaging
Computer Science
electromagnetic metamaterials
energy efficiency
Engineering
Hardware
Human motion
Line of sight
Mannequins
Metamaterials
Metasurfaces
Microwave sensors
Motion perception
radar detection
Radio frequency
radio frequency (RF)
Sensors
Smart buildings
Target detection
Telecommunications
Wireless fidelity
title Detecting Motion in a Room Using a Dynamic Metasurface Antenna
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