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Reduced-Reference Image Quality Assessment Using Reorganized DCT-Based Image Representation

机译:基于重组的基于DCT的图像表示的减少参考图像质量评估

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摘要

In this paper, a novel reduced-reference (RR) image quality assessment (IQA) is proposed by statistical modeling of the discrete cosine transform (DCT) coefficient distributions. In order to reduce the RR data rates and further exploit the identical nature of the coefficient distributions between adjacent DCT subbands, the DCT coefficients are reorganized into a three-level coefficient tree. Subsequently, generalized Gaussian density (GGD) is employed to model the coefficient distribution of each reorganized DCT subband. The city-block distance is employed to measure the difference between the two images. Experimental results demonstrate that only a small number of RR features is sufficient for representing the image perceptual quality. The proposed method outperforms the RR WNISM and even the full-reference (FR) quality metric PSNR.
机译:本文通过对离散余弦变换(DCT)系数分布进行统计建模,提出了一种新颖的降参考(RR)图像质量评估(IQA)。为了降低RR数据速率并进一步利用相邻DCT子带之间的系数分布的相同性质,将DCT系数重新组织成三级系数树。随后,采用广义高斯密度(GGD)对每个重组DCT子带的系数分布进行建模。街区距离用于测量两个图像之间的差异。实验结果表明,只有少量的RR特征足以代表图像的感知质量。所提出的方法优于RR WNISM,甚至优于全参考(FR)质量度量PSNR。

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