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Blind image quality assessment through anisotropy

机译:通过各向异性进行盲眼图像质量评估

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摘要

We describe an innovative methodology for determining the quality of digital images. The method is based on measuring the variance of the expected entropy of a given image upon a set of predefined directions. Entropy can be calculated on a local basis by using a spatial/spatial-frequency distribution as an approximation for a probability density function. The generalized Renyi entropy and the normalized pseudo-Wigner distribution (PWD) have been selected for this purpose. As a consequence, a pixel-by-pixel entropy value can be calculated, and therefore entropy histograms can be generated as well. The variance of the expected entropy is measured as a function of the directionality, and it has been taken as an anisotropy indicator. For this purpose, directional selectivity can be attained by using an oriented 1-D PWD implementation. Our main purpose is to show how such an anisotropy measure can be used as a metric to assess both the fidelity and quality of images. Experimental results show that an index such as this presents some desirable features that resemble those from an ideal image quality function, constituting a suitable quality index for natural images. Namely, infocus, noise-free natural images have shown a maximum of this metric in comparison with other degraded, blurred, or noisy versions. This result provides a way of identifying in-focus, noise-free images from other degraded versions, allowing an automatic and nonreference classification of images according to their relative quality. It is also shown that the new measure is well correlated with classical reference metrics such as the peak signal-to-noise ratio.
机译:我们描述了一种确定数字图像质量的创新方法。该方法基于在一组预定义方向上测量给定图像的预期熵的方差。可以通过使用空间/空间频率分布作为概率密度函数的近似值来在局部基础上计算熵。为此选择了广义的仁义熵和归一化的伪维格纳分布(PWD)。结果,可以计算逐像素的熵值,因此也可以生成熵直方图。期望熵的方差作为方向性的函数进行测量,并且已被视为各向异性指标。为此,可以通过使用定向的一维PWD实现来实现方向选择性。我们的主要目的是展示如何将这种各向异性度量用作评估图像保真度和图像质量的指标。实验结果表明,这样的索引具有一些理想的功能,这些特征与理想图像质量函数的特征相似,构成了适合自然图像的质量指数。即,与其他降级,模糊或嘈杂版本相比,无焦点,无噪点自然对焦图像显示了该指标的最大值。该结果提供了一种从其他降级版本中识别对焦,无噪点图像的方法,从而可以根据图像的相对质量对图像进行自动和非参考分类。还表明,新测量与经典参考指标(如峰值信噪比)具有很好的相关性。

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