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Automatic camera self-calibration for immersive navigation of free viewpoint sports video

机译:自动摄像机自校准,可沉浸式导航免费视点体育视频

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摘要

In recent years, the demand of immersive experience has triggered a great revolution in the applications and formats of multimedia. Particularly, immersive navigation of free viewpoint sports video has become increasingly popular, and people would like to be able to actively select different viewpoints when watching sports videos to enhance the ultra realistic experience. In the practical realization of immersive navigation of free viewpoint video, the camera calibration is of vital importance. Especially, automatic camera calibration is very significant in real-time implementation and the accuracy of camera parameter directly determines the final experience of free viewpoint navigation. In this paper, we propose an automatic camera self-calibration method based on a field model for free viewpoint navigation in sports events. The proposed method is composed of three parts, namely, extraction of field lines in a camera image, calculation of crossing points, determination of the optimal camera parameter. Experimental results show that the camera parameter can be automatically estimated by the proposed method for a fixed camera, dynamic camera and multi-view cameras with high accuracy. Furthermore, immersive free viewpoint navigation in sports events can also be completely realized based on the camera parameter estimated by the proposed method.
机译:近年来,沉浸式体验的需求引发了多媒体应用和格式的巨大变革。尤其是,自由视点体育视频的身临其境的导航已变得越来越流行,人们希望能够在观看体育视频时主动选择不同的视点,以增强超逼真的体验。在自由视点视频的沉浸式导航的实际实现中,相机校准至关重要。尤其是,自动摄像机校准在实时实施中非常重要,摄像机参数的准确性直接决定了自由视点导航的最终体验。在本文中,我们提出了一种基于场模型的自动相机自校准方法,用于体育赛事中的自由视点导航。所提出的方法由三部分组成,即摄像机图像中场线的提取​​,交叉点的计算,最优摄像机参数的确定。实验结果表明,所提出的方法可以对固定摄像机,动态摄像机和多视角摄像机进行高精度的摄像机参数自动估计。此外,基于所提出的方法估计的摄像机参数,还可以完全实现体育赛事中的沉浸式自由视点导航。

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