Kalman Filter for a Particular Class of Dynamic Object Images
Victor Soifer,
Vladimir Fursov,
Sergey Kharitonov
Abstract:We discuss the problem of estimating the state of a dynamic object by using observed images generated by an optical system. The work aims to implement a novel approach that would ensure improved accuracy of dynamic object tracking using a sequence of images. We utilize a vector model that describes the object image as a limited number of vertexes (reference points). Upon imaging, the object of interest is assumed to be retained at the center of each frame, so that the motion parameters can be considered as pro… Show more
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