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Least-Squares-Based Switching Structure for Lossless Image Coding

机译:基于最小二乘的无损图像编码交换结构

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摘要

Many coding methods are more efficient with some images than others. In particular, run-length coding is very useful for coding areas of little changes. Adaptive predictive coding achieves high coding efficiency for fast changing areas like edges. In this paper, we propose a switching coding scheme that will combine the advantages of both run-length and adaptive linear predictive coding. For pixels in slowly varying areas, run-length coding is used; otherwise least-squares (LS)-adaptive predictive coding is used. Instead of performing LS adaptation in a pixel-by-pixel manner, we adapt the predictor coefficients only when an edge is detected so that the computational complexity can be significantly reduced. For this, we use a simple yet effective edge detector using only causal pixels. This way, the proposed system can look ahead to determine if the coding pixel is around an edge and initiate the LS adaptation in advance to prevent the occurrence of a large prediction error. With the proposed switching structure, very good prediction results can be obtained in both slowly varying areas and pixels around boundaries. Furthermore, only causal pixels are used for estimating the coding pixels in the proposed encoder; no additional side information needs to be transmitted. Extensive experiments as well as comparisons to existing state-of-the-art predictors and coders will be given to demonstrate its usefulness.
机译:对于某些图像,许多编码方法比其他图像更有效。特别是,游程长度编码对于编码变化很小的区域非常有用。自适应预测编码可为边缘等快速变化的区域实现较高的编码效率。在本文中,我们提出了一种开关编码方案,该方案将兼具游程长度和自适应线性预测编码的优点。对于缓慢变化区域中的像素,使用游程编码。否则,将使用最小二乘(LS)自适应预测编码。代替以逐个像素的方式执行LS自适应,我们仅在检测到边缘时才自适应预测系数,从而可以显着降低计算复杂度。为此,我们使用仅使用因果像素的简单而有效的边缘检测器。这样,所提出的系统可以向前确定编码像素是否在边缘附近,并提前启动LS自适应以防止大的预测误差的发生。利用提出的开关结构,可以在缓慢变化的区域和边界周围的像素中获得非常好的预测结果。此外,仅使用因果像素来估计所提出的编码器中的编码像素。无需传输其他辅助信息。将进行广泛的实验以及与现有最新的预测器和编码器的比较,以证明其有用性。

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