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Robust multi-camera 3D tracking from mono-camera 2d tracking using Bayesian Association

机译:使用贝叶斯协会从单机2d跟踪进行稳健的多机3d跟踪

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摘要

Visual tracking is essential for automatic scene understanding and surveillance of areas of interest. Monocular 2D tracking has been largely studied in the literature, but it usually provides inadequate or incomplete information for event interpretation. In addition, it proves insufficiently robust, due to view-point limitations and lack of depth information. However, the association of multiple cameras with overlapped fields of view allows the inference of 3D information and, thus, a richer description of the monitored scene.
机译:视觉跟踪对于自动了解场景和监视感兴趣区域至关重要。单眼2D跟踪已在文献中进行了大量研究,但通常无法为事件解释提供足够或不完整的信息。另外,由于视点限制和缺乏深度信息,它被证明不够坚固。但是,将多个摄像机与重叠的视野关联起来,就可以推断出3D信息,从而可以对被监视的场景进行更丰富的描述。

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