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2020
Doctoral Thesis
Titel
Dynamic Switching State Systems for Visual Tracking
Abstract
This work addresses the problem of how to capture the dynamics of maneuvering objects for visual tracking. Towards this end, the perspective of recursive Bayesian filters and the perspective of deep learning approaches for state estimation are considered and their functional viewpoints are brought together.
ThesisNote
Zugl.: Karlsruhe, Inst. für Technologie (KIT), Diss., 2020