首页> 外文会议>International Conference on Acoustics, Speech and Signal Processing >AN EPIGRAPHICAL CONVEX OPTIMIZATION APPROACH FOR MULTICOMPONENT IMAGE RESTORATION USING NON-LOCAL STRUCTURE TENSOR
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AN EPIGRAPHICAL CONVEX OPTIMIZATION APPROACH FOR MULTICOMPONENT IMAGE RESTORATION USING NON-LOCAL STRUCTURE TENSOR

机译:使用非局部结构张量的多组分图像恢复的回物凸优化方法

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TV-like constraints/regularizations are useful tools in variational methods for multicomponent image restoration. In this paper, we design more sophisticated non-local TV constraints which are derived from the structure tensor. The proposed approach allows us to measure the non-local variations, jointly for the different components, through various l_(1,p) matrix norms with p ≥ 1. The related convex constrained optimization problems are solved through a novel epigraphical projection method. This formulation can be efficiently implemented thanks to the flexibility offered by recent primal-dual proximal algorithms. Experiments carried out for color images demonstrate the interest of considering a Non-Local Structure Tensor TV and show that the proposed epigraphical projection method leads to significant improvements in terms of convergence speed over existing numerical solutions.
机译:电视 - 类似的约束/规范化是多组分图像恢复的变分方法中的有用工具。在本文中,我们设计了更复杂的非本地电视约束,这些电视约束来自结构张量。所提出的方法使我们能够通过P≥1的各种L_(1,P)矩阵规范来测量不同组分的非局部变体,通过P≥1。通过一种新的形页面投影方法解决了相关的凸起的优化问题。由于最近的原始双近端算法提供的灵活性,可以有效地实施该配方。用于彩色图像的实验表明了考虑非局部结构张量电视的兴趣,并表明所提出的页面投影方法在现有数值解决方案上的收敛速度方面导致显着改进。

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