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Blind Image Quality Assessment by Natural Scene Statistics and Perceptual Characteristics

机译:自然场景统计和感知特征的盲目图像质量评估

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Opinion-unaware blind image quality assessment (OU BIQA) refers to establishing a blind quality prediction model without using the expensive subjective quality scores, which is a highly promising direction in the BIQA research. In this article, we focus on OU BIQA and propose a novel OU BIQA method. Specifically, in our proposed method, we deeply investigate the natural scene statistics (NSS) and the perceptual characteristics of the human brain for visual perception. Accordingly, a set of quality-aware NSS and perceptual characteristics-related features are designed to characterize the image quality effectively. For inferring the image quality, we learn a pristine multivariate Gaussian (MVG) model on a collection of pristine images, which serves as the reference information for quality evaluation. At last, the quality of a new given image is defined by measuring the divergence between its MVG model and the learned pristine MVG model. Thorough experiments performed on seven popular image databases demonstrate that the proposed OU BIQA method delivers superior performance to the state-of-the-art OU BIQA methods. The Matlab source code of the proposed method will be made publicly available at https://github.com/YT2015?tab=repositories.
机译:意见非盲目图像质量评估(OU BIQA)是指在不使用昂贵的主观质量评分的情况下建立盲质量预测模型,这是BIQA研究中具有高度有希望的方向。在本文中,我们专注于OU BIQA并提出一种新颖的OU BIQA方法。具体地,在我们提出的方法中,我们深入研究自然场景统计(NSS)和人类脑的感知特征以进行视觉感知。因此,设计了一组质量感知的NSS和感知特性相关特征,用于有效地表征图像质量。为了推断图像质量,我们在原始图像集合上学习原始多变量高斯(MVG)模型,其用作质量评估的参考信息。最后,通过测量其MVG模型与学习的原始MVG模型之间的分歧来定义新给定图像的质量。在七种流行的图像数据库上进行的彻底实验表明,所提出的OU BIQA方法对最先进的OU BIQA方法提供了卓越的性能。该方法的MATLAB源代码将在HTTPS://github.com/yt2015?tab = Repositor公开可用。

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