Publication | Closed Access
Generalized probabilistic data association for vehicle tracking under clutter
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Citations
13
References
2012
Year
Unknown Venue
Automotive TrackingAdditional Clutter ObservationsMachine VisionEngineeringData ScienceData MiningPattern RecognitionProbabilistic Data AssociationTracking SystemMulti-sensor Information FusionObject TrackingCamera SensorMoving Object TrackingNumerous Vehicular ApplicationsStatisticsComputer Vision
Vehicle tracking under clutter is an important prerequisite for numerous vehicular applications. In this paper, we propose a generalization of the existing integrated probabilistic data association method in order to model situations where several true and additional clutter observations originated from one object. We will show that the proposed method outperforms the existing one. Furthermore, we will demonstrate a system utilizing a camera sensor and the proposed algorithm for detecting and tracking vehicles under clutter.
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