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Cell-based Object Tracking Method for 3D Shape Reconstruction Using Multi-viewpoint Active Cameras

机译:基于小区的目标跟踪方法,用于使用多视点活动摄像机的3D形重建

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3D shape of objects can provide richer information for detecting, tracking or identifying the objects than a single 2D image of them. We tackle the 3D shape and texture reconstruction of an object moving in a widespread space using multi-viewpoint active cameras. Considering 3D shape and texture reconstruction, the problem in existing tracking methods using active cameras is that they cannot calibrate the active cameras accurately. We propose a cell-based tracking method that can produce multi-viewpoint images and accurate camera parameters for every frame. Our idea is to divide the space into cells and perform active camera control and calibration based on the cells. We demonstrate the performance of our method by simulation.
机译:对象的3D形状可以提供更丰富的信息,用于检测,跟踪或识别对象而不是它们的单个2D图像。我们使用多视点活动摄像头来解决在广泛空间中移动的对象的3D形状和纹理重建。考虑到3D形状和纹理重建,使用活动摄像机现有的跟踪方法中的问题是它们无法准确地校准活动相机。我们提出了一种基于单元的跟踪方法,可以为每个帧产生多视点图像和准确的相机参数。我们的想法是将空间划分为单元格并基于单元格执行主动摄像机控制和校准。我们通过模拟展示了我们方法的性能。

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