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Estimation of camera parameters from image sequence for model-basedvideo coding

机译:从图像序列估计相机参数以进行基于模型的视频编码

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The authors describe a method for estimating camera parameters from image sequences for application to emerging model-based video coding systems. The parameters to be estimated include focal length, zoom, and 3-D rotation parameters. The method consists of first establishing a correspondence and then, estimating the parameters by fitting the correspondence data to a transformation model based on a perspective mapping model and a 3-D rotation and zoom operation model. They show by simulations and experiments that the proposed method successfully estimates the focal length from the image sequences, it explains very well the induced motion field of images undergoing camera operation (3-D rotation and zoom), and that it significantly outperforms conventional estimation methods, especially for wide-angled images. It is anticipated that the proposed method will be successfully applied to compensating for the motion field induced by camera operation in extracting a 3-D object model and a 3-D object motion, and to synchronizing the viewing direction and scale of an image, in model-based video coding technology
机译:作者描述了一种从图像序列估计相机参数的方法,以应用于新兴的基于模型的视频编码系统。要估计的参数包括焦距,变焦和3-D旋转参数。该方法包括首先建立对应关系,然后通过将对应关系数据拟合到基于透视图映射模型和3-D旋转和缩放操作模型的转换模型来估计参数。他们通过仿真和实验表明,该方法成功地从图像序列中估计了焦距,很好地说明了经过相机操作(3-D旋转和缩放)的图像的感应运动场,并且其性能明显优于传统的估计方法。 ,尤其是对于广角图像。可以预期,所提出的方法将成功地用于补偿相机操作在提取3D对象模型和3D对象运动中引起的运动场,以及同步图像的观看方向和比例。基于模型的视频编码技术

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