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BIQWS: efficient Wakeby modeling of natural scene statistics for blind image quality assessment

机译:BIQWS:自然场景统计信息的有效Wakeby建模,用于盲目图像质量评估

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摘要

In this paper, a universal blind image quality assessment (IQA) algorithm is proposed that works in presence of various distortions. The proposed algorithm is a Blind Image Quality metric based on Wakeby Statistics (BIQWS) which extracts local mean subtraction and contrast normalization (MSCN) coefficients in spatial domain from input image. The MSCN coefficients are used for generating a Wakeby distribution statistical model to extract quality-aware features. The statistical studies indicate that the MSCN coefficients histogram is altered in the presence of various distortions with different severities. These changes are regular and can be used to estimate the type of the distortion and its severity. We extended our previous studies to extract efficient Wakeby distribution model parameters which are more sensitive to changes in MSCN coefficients. These parameters are used to form a quality-aware feature vector. This feature vector is then fed to an SVM (support vector machine) regression model with a nonlinear Kernel to predict the quality score of the input image without any information about the distortion type or reference image. Experimental results show that the image quality index obtained by the proposed method has higher correlation with respect to human perceptual opinions and it is superior in some distortions when compared to some full-reference and other state-of-the-art blind image quality assessment methods.
机译:在本文中,提出了一种通用的盲图像质量评估(IQA)算法,该算法可在存在各种失真的情况下工作。所提出的算法是一种基于Wakeby Statistics(BIQWS)的盲图像质量度量,该度量从输入图像中提取空间域中的局部均值减去和对比度归一化(MSCN)系数。 MSCN系数用于生成Wakeby分布统计模型,以提取质量感知特征。统计研究表明,在存在具有不同严重性的各种失真的情况下,MSCN系数直方图会发生变化。这些变化是有规律的,可用于估计变形的类型及其严重性。我们扩展了以前的研究,以提取对MSCN系数变化更敏感的有效Wakeby分布模型参数。这些参数用于形成质量感知特征向量。然后将此特征向量馈入具有非线性内核的SVM(支持向量机)回归模型,以预测输入图像的质量得分,而无需任何有关变形类型或参考图像的信息。实验结果表明,该方法获得的图像质量指数与人的感知度具有较高的相关性,并且与某些全参考和其他最新的盲目图像质量评估方法相比,在某些失真方面更为出色。

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