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Weighted Adaptive Lifting-Based Wavelet Transform for Image Coding

机译:基于加权自适应提升的小波变换的图像编码

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摘要

In this paper, a new weighted adaptive lifting (WAL)-based wavelet transform is presented. The proposed WAL approach is designed to solve the problems existing in the previous adaptive directional lifting (ADL) approach, such as mismatch between the predict and update steps, interpolation favoring only horizontal or vertical direction, and invariant interpolation filter coefficients for all images. The main contribution of the proposed approach consists of two parts: one is the improved weighted lifting, which maintains the consistency between the predict and update steps as far as possible and preserves the perfect reconstruction at the same time; another is the directional adaptive interpolation, which improves the orientation property of the interpolated image and adapts to statistical property of each image. Experimental results show that the proposed WAL-based wavelet transform for image coding outperforms the conventional lifting-based wavelet transform up to 3.06 dB in PSNR and significant improvement in subjective quality is also observed. Compared with the ADL-based wavelet transform, up to 1.22-dB improvement in PSNR is reported.
机译:本文提出了一种新的基于加权自适应提升(WAL)的小波变换。提出的WAL方法旨在解决以前的自适应定向提升(ADL)方法中存在的问题,例如预测和更新步骤之间的不匹配,仅对水平或垂直方向有利的插值,以及所有图像的不变插值滤波器系数。所提出的方法的主要贡献包括两部分:一方面是改进的加权提升,它尽可能地保持了预测步骤和更新步骤之间的一致性,同时又保留了完美的重构。另一个是方向自适应插值,它改善了插值图像的方向特性并适应每个图像的统计特性。实验结果表明,所提出的基于WAL的图像编码小波变换在PSNR方面优于传统的基于提升的小波变换,在PSNR方面高达3.06 dB,并且在主观质量上也得到了显着改善。与基于ADL的小波变换相比,据报道PSNR可以提高1.22 dB。

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