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Blind Image Quality Evaluation Using the Conditional Histogram Patterns of Divisive Normalization Transform Coefficients

机译:使用除法归一化变换系数的条件直方图模式进行盲图像质量评估

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摘要

A novel code book based framework for blind image quality assessment is developed. The code words are designed according to the image pattern of joint conditional histograms among neighboring divisive normalization transform coefficients in degraded images. By extracting high dimensional perceptual features from different subjective score levels in the sample database, and by clustering the features to their centroids, the conditional histogram based code book is constructed. Objective image quality score is calculated by comparing the distances between extracted features and the code words. Experiments are performed on most current databases, and the results confirm the effectiveness and feasibility of the proposed approach.
机译:开发了一种新颖的基于代码本的盲图像质量评估框架。根据降级图像中相邻的除法归一化变换系数之间的联合条件直方图的图像模式设计代码字。通过从样本数据库中不同的主观评分级别提取高维感知特征,并将特征聚类到其质心,构建了基于条件直方图的代码本。通过比较提取的特征和代码字之间的距离来计算客观图像质量得分。在大多数当前数据库上进行了实验,结果证实了该方法的有效性和可行性。

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