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A Rotate-based Best Neighborhood Matching Algorithm for High Definition Image Error Concealment

机译:高清晰度图像错误掩盖的基于旋转的最佳邻域匹配算法

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Error concealment restores the visual integrity of image content that has been damaged due to a bad network transmission. Best neighborhood matching (BNM) is an effective image recovery method that exploits the information redundancy in a block-coded broken image to find similar content which it then uses to repair or conceal errors. On a high-definition image BNM requires a relatively long time and so is not suitable for real-time or high volume use. In this paper, a rotate-based BNM algorithm is proposed and implemented which searches the best matching block from the broken block to the outside in a rotating style and dynamically detects and cuts the search range for a damaged block. Experiment results show that our approach can speed up BNM more than twenty times without any obvious loss of accuracy.
机译:隐藏错误可恢复由于不良网络传输而损坏的图像内容的视觉完整性。最佳邻域匹配(BNM)是一种有效的图像恢复方法,它利用块编码的破碎图像中的信息冗余来查找相似的内容,然后将其用于修复或隐藏错误。在高清图像上,BNM需要相对较长的时间,因此不适合实时或大量使用。本文提出并实现了一种基于旋转的BNM算法,该算法以旋转的方式搜索从破碎块到外部的最佳匹配块,并动态检测并削减了受损块的搜索范围。实验结果表明,我们的方法可以将BNM速度提高20倍以上,而准确性没有任何明显的损失。

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