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New spatial error concealment with texture modeling and adaptive directional recovery

机译:具有纹理建模和自适应方向恢复的新空间错误隐藏

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摘要

A spatial error concealment technique based on the sequence-aligned texture modeling and the adaptive directional recovery is proposed in this work. Texture modeling is achieved using the sequence alignment technique. It captures the local variation and the global trend of image textures in corrupted regions with surrounding uncorrupted pixels, and provides the best texture model under a given cost function. Results of texture approximation are in a form of aligned pixel pairs, and the desired local texture model can be obtained by connecting them with line segments. With the derived texture model, geometric interpolation is then used to recover lost pixels adaptively based on pixel locations. There are four candidate pixel sequences to recover lost pixels, and one of them is selected for the concealment purpose. Since a pixel sequence that provides good estimation of lost pixels should also offer a good estimate of pixels surrounding the corrupted region, the minimum-mean-squared error (MMSE) between original and estimated uncorrupted pixels is used as the selection criterion. Extensive experimental results are given to demonstrate that the proposed error concealment technique outperforms several benchmark methods in both objective and subjective tests.
机译:提出了一种基于序列对齐纹理建模和自适应方向恢复的空间错误隐藏技术。使用序列比对技术可以实现纹理建模。它捕获周围区域未损坏像素的损坏区域中图像纹理的局部变化和全局趋势,并在给定成本函数下提供最佳纹理模型。纹理近似的结果采用对齐的像素对的形式,可以通过将它们与线段连接来获得所需的局部纹理模型。通过导出的纹理模型,然后使用几何插值法根据像素位置自适应地恢复丢失的像素。有四个候选像素序列可恢复丢失的像素,其中之一被选择用于隐藏。由于提供丢失像素好估计的像素序列也应该提供损坏区域周围像素的好估计,因此原始像素和估计未损坏像素之间的最小均方误差(MMSE)被用作选择标准。大量的实验结果表明,所提出的错误隐藏技术在客观和主观测试中均优于几种基准测试方法。

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