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Optimization of integer wavelet transforms based on difference correlation structures

机译:基于差分相关结构的整数小波变换优化

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In this paper, a novel lifting integer wavelet transform based on difference correlation structure (DCCS-LIWT) is proposed. First, we establish a relationship between the performance of a linear predictor and the difference correlations of an image. The obtained results provide a theoretical foundation for the following construction of the optimal lifting filters. Then, the optimal prediction lifting coefficients in the sense of least-square prediction error are derived. DCCS-LIWT puts heavy emphasis on image inherent dependence. A distinct feature of this method is the use of the variance-normalized autocorrelation function of the difference image to construct a linear predictor and adapt the predictor to varying image sources. The proposed scheme also allows respective calculations of the lifting filters for the horizontal and vertical orientations. Experimental evaluation shows that the proposed method produces better results than the other well-known integer transforms for the lossless image compression.
机译:提出了一种新的基于差分相关结构的提升整数小波变换(DCCS-LIWT)。首先,我们在线性预测器的性能和图像的差异相关性之间建立关系。获得的结果为最佳提升过滤器的后续构造提供了理论基础。然后,导出在最小二乘预测误差的意义上的最佳预测提升系数。 DCCS-LIWT非常重视图像固有的依赖性。该方法的一个显着特征是使用差异图像的方差归一化自相关函数来构造线性预测器并使预测器适应变化的图像源。所提出的方案还允许针对水平和垂直方向的提升滤波器的相应计算。实验评估表明,对于无损图像压缩,该方法比其他众所周知的整数变换产生更好的结果。

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