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Blind Image Quality Assessment of Natural Scenes Based on Entropy Differences in the DCT domain

机译:基于DCT域熵差异的自然场景盲目图像质量评估

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摘要

Blind/no-reference image quality assessment is performed to accurately evaluate the perceptual quality of a distorted image without prior information from a reference image. In this paper, an effective blind image quality assessment approach based on entropy differences in the discrete cosine transform domain for natural images is proposed. Information entropy is an effective measure of the amount of information in an image. We find the discrete cosine transform coefficient distribution of distorted natural images shows a pulse-shape phenomenon, which directly affects the differences of entropy. Then, a Weibull model is used to fit the distributions of natural and distorted images. This is because the Weibull model sufficiently approximates the pulse-shape phenomenon as well as the sharp-peak and heavy-tail phenomena of natural scene statistics rules. Four features that are related to entropy differences and human visual system are extracted from the Weibull model for three scaling images. Image quality is assessed by the support vector regression method based on the extracted features. This blind Weibull statistics algorithm is thoroughly evaluated using three widely used databases: LIVE, TID2008, and CSIQ. The experimental results show that the performance of the proposed blind Weibull statistics method is highly consistent with that of human visual perception and greater than that of the state-of-the-art blind and full-reference image quality assessment methods in most cases.
机译:执行盲/无参考图像质量评估,以精确地评估扭曲图像的感知质量而不来自参考图像的先验信息。本文提出了一种基于自然图像离散余弦变换域的熵差的有效盲图像质量评估方法。信息熵是图像中信息量的有效衡量标准。我们发现扭曲的自然图像的离散余弦变换系数分布显示了脉冲形状现象,它直接影响熵的差异。然后,使用Weibull模型来符合自然和扭曲图像的分布。这是因为威布尔模型足够地近似于脉冲形状现象以及自然场景统计规则的锐利峰值和重型现象。与熵差和人类视觉系统相关的四个特征是从Weibull模型中提取三个缩放图像。通过基于提取的特征的支持向量回归方法评估图像质量。使用三个广泛使用的数据库进行彻底评估该盲威布尔统计算法:Live,TID2008和CSIQ。实验结果表明,在大多数情况下,提出的盲人威布尔统计方法的性能与人类视觉感知的高度一致,大多数情况下大于最先进的盲人和全参考图像质量评估方法。

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