Classifying Participant Standing and Sitting Postures Using Channel State Information
Oliver Custance,
Saad Khan,
Simon Parkinson
Abstract:Recently, channel state information (CSI) has been identified as beneficial in a wide range of applications, ranging from human activity recognition (HAR) to patient monitoring. However, these focused studies have resulted in data that are limited in scope. In this paper, we investigate the use of CSI data obtained from an ESP32 microcontroller to identify participants from sitting and standing postures in a many-to-one classification. The test is carried out in a controlled isolated environment to establish w… Show more
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