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样条空间中非均匀采样图像的重建。

Reconstruction of nonuniformly sampled images in spline spaces.

作者信息

Vázquez Carlos, Dubois Eric, Konrad Janusz

机构信息

Department of Electrical and Computer Engineering, Concordia University, Montréal, QC H3G 1M8 Canada.

出版信息

IEEE Trans Image Process. 2005 Jun;14(6):713-25. doi: 10.1109/tip.2005.847297.

Abstract

This paper presents a novel approach to the reconstruction of images from nonuniformly spaced samples. This problem is often encountered in digital image processing applications. Nonrecursive video coding with motion compensation, spatiotemporal interpolation of video sequences, and generation of new views in multicamera systems are three possible applications. We propose a new reconstruction algorithm based on a spline model for images. We use regularization, since this is an ill-posed inverse problem. We minimize a cost function composed of two terms: one related to the approximation error and the other related to the smoothness of the modeling function. All the processing is carried out in the space of spline coefficients; this space is discrete, although the problem itself is of a continuous nature. The coefficients of regularization and approximation filters are computed exactly by using the explicit expressions of B-spline functions in the time domain. The regularization is carried out locally, while the computation of the regularization factor accounts for the structure of the nonuniform sampling grid. The linear system of equations obtained is solved iteratively. Our results show a very good performance in motion-compensated interpolation applications.

摘要

本文提出了一种从非均匀间隔样本重建图像的新方法。这个问题在数字图像处理应用中经常遇到。具有运动补偿的非递归视频编码、视频序列的时空插值以及多摄像机系统中新视图的生成是三种可能的应用。我们提出了一种基于样条模型的图像重建新算法。由于这是一个不适定的逆问题,所以我们使用正则化。我们最小化由两项组成的代价函数:一项与近似误差有关,另一项与建模函数的平滑度有关。所有处理都在样条系数空间中进行;这个空间是离散的,尽管问题本身具有连续性质。正则化和近似滤波器的系数通过使用B样条函数在时域中的显式表达式精确计算。正则化在局部进行,而正则化因子的计算考虑了非均匀采样网格的结构。所得到的线性方程组通过迭代求解。我们的结果表明在运动补偿插值应用中具有非常好的性能。

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