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Lossless Compression of Color Sequences Using Optimal Linear Prediction Theory

机译:使用最佳线性预测理论对颜色序列进行无损压缩

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摘要

In this paper, we present a novel technique that uses the optimal linear prediction theory to exploit all the existing redundancies in a color video sequence for lossless compression purposes. The main idea is to introduce the spatial, the spectral, and the temporal correlations in the autocorrelation matrix estimate. In this way, we calculate the cross correlations between adjacent frames and adjacent color components to improve the prediction, i.e., reduce the prediction error energy. The residual image is then coded using a context-based Golomb–Rice coder, where the error modeling is provided by a quantized version of the local prediction error variance. Experimental results show that the proposed algorithm achieves good compression ratios and it is roboust against the scene change problem.
机译:在本文中,我们提出了一种新颖的技术,该技术使用最佳线性预测理论来开发彩色视频序列中所有现有的冗余以实现无损压缩。主要思想是在自相关矩阵估计中引入空间,频谱和时间相关性。以这种方式,我们计算相邻帧和相邻颜色分量之间的互相关以改善预测,即减少预测误差能量。然后,使用基于上下文的Golomb-Rice编码器对残差图像进行编码,其中误差建模由局部预测误差方差的量化版本提供。实验结果表明,该算法具有良好的压缩率,对场景变化问题具有较强的鲁棒性。

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