求解混合有限差分凸图像抖动模型的原始-对偶算法

Weiwei Deng, Jie Liang, Wenxing Zhang
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引用次数: 0

摘要

抖动是多媒体数据压缩和无线视频传输领域中出现的一种普遍现象。抖动图像的视觉异常表现为边缘锯齿状和纵向同步丢失。由于抖动数据中存在普遍存在的噪声,图像的固有抖动问题是一个具有挑战性的问题。本文通过在目标函数中施加高阶有限差分正则化器,利用约束的线性化,建立了求解图像抖动问题的凸变分模型。根据凸优化界的最新进展,该模型可以用一阶原对偶算法有效地求解。对恢复无噪声和有噪声抖动数据的数值模拟表明了该模型令人信服的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Primal-dual algorithm for solving a convex image dejittering model with hybrid finite differences
Jittering is a common phenomenon arising from the area of multimedia data compression and wireless video transmission. The visual abnormality of a jittered image is the jag in edge and loss of synchronization in latitudinal direction. Typically, the problem of intrinsic image dejittering is challenging to be tackled because of the ubiquitous noise in jittered data. In this paper, we develop a convex variational model for solving image dejittering problem by exerting high-order finite differences regularizer in objective function and exploiting linearization to constraints. Upon the recent progress in convex optimization community, the proposed model can be efficiently solved by the first-order primal-dual algorithm. Numerical simulations on recovering both noiseless and noisy jittered data demonstrate the compelling performance of the proposed model.
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