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An edge-preserving subband coding model based on non-adaptive and adaptive regularization

机译:基于非自适应自适应正则化的保边子带编码模型

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摘要

In this paper, we introduce two new edge-preserving image compression approaches based on the wavelet transform and iterative constrained least square regularization approach. These approaches treat image reconstructed from lossy image compression as the process of image restoration. They utilize the edge information detected from the source image as a priori knowledge for the subsequent reconstruction. In addition, one of the approaches makes use of the spatial characteristics of wavelet coded images to enhance its restoration performance. In order to compromise the overall bit-rate incurred by the additional edge information, a simple vector quantization scheme is proposed to classify the edge bit-planes pattern into a number of binary codevectors. The experiment showed that the proposed approaches could definitely improve both objective and subjective quality of the reconstructed image by recovering more image details an edges.
机译:在本文中,我们介绍了两种基于小波变换和迭代约束最小二乘正则化方法的新的边缘保留图像压缩方法。这些方法将根据有损图像压缩重建的图像视为图像恢复过程。他们利用从源图像中检测到的边缘信息作为后续重建的先验知识。另外,其中一种方法是利用小波编码图像的空间特征来增强其恢复性能。为了损害由附加边缘信息引起的总比特率,提出了一种简单的矢量量化方案,以将边缘比特平面模式分类为多个二进制码矢量。实验表明,所提出的方法可以通过恢复边缘的更多图像细节来肯定地改善重建图像的客观和主观质量。

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