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Sequential Error Concealment for Video/Images by Sparse Linear Prediction

机译:基于稀疏线性预测的视频/图像顺序错误隐藏

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摘要

In this paper, we propose a novel sequential error concealment algorithm for video and images based on sparse linear prediction. Block-based coding schemes in packet loss environments are considered. Images are modelled by means of linear prediction, and missing macroblocks are sequentially reconstructed using the available groups of pixels. The optimal predictor coefficients are computed by applying a missing data regression imputation procedure with a sparsity constraint. Moreover, an efficient procedure for the computation of these coefficients based on an exponential approximation is also proposed. Both techniques provide high-quality reconstructions and outperform the state-of-the-art algorithms both in terms of PSNR and MS-SSIM.
机译:在本文中,我们提出了一种基于稀疏线性预测的视频和图像序列错误隐藏算法。考虑了分组丢失环境中的基于块的编码方案。通过线性预测对图像进行建模,并使用可用的像素组顺序重建丢失的宏块。通过应用具有稀疏约束的缺失数据回归插补程序来计算最佳预测系数。此外,还提出了一种基于指数逼近的有效系数计算方法。两种技术都可以提供高质量的重建,并且在PSNR和MS-SSIM方面都优于最新的算法。

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