Publication | Closed Access
Human indoor localization based on ceiling mounted PIR sensor nodes
32
Citations
16
References
2016
Year
Unknown Venue
Pir Sensor NodesSpatial SegmentationWireless LocalizationLocation TrackingMachine VisionEngineeringLocation EstimationRf LocalizationLocalization AlgorithmLocation AwarenessEye TrackingWearable TechnologyField RoboticsLocalization TechniqueIndoor Positioning SystemLocalizationSignal ProcessingKalman Filter
This paper presents a human indoor localization system using ceiling mounted pyroelectric infrared (PIR) sensors. The field of views (FOVs) of the PIR sensors is modulated by two degrees of freedom (DOF) of spatial segmentation. The localization algorithm is proposed to fuse the data stream generated from different sensor nodes within the wireless network. The Kalman Filter and Kalman Smoother are utilized to refine the estimation of the human position. We conduct experiments in a real office environment, and the average root-mean-square error (RMSE) of single human target tracking at different speed is about 0.6 meter. The promising results confirm the efficacy of our system.
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