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No-Reference Image Blur Assessment Based on Discrete Orthogonal Moments

机译:基于离散正交矩的无参考图像模糊评估

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摘要

Blur is a key determinant in the perception of image quality. Generally, blur causes spread of edges, which leads to shape changes in images. Discrete orthogonal moments have been widely studied as effective shape descriptors. Intuitively, blur can be represented using discrete moments since noticeable blur affects the magnitudes of moments of an image. With this consideration, this paper presents a blind image blur evaluation algorithm based on discrete Tchebichef moments. The gradient of a blurred image is first computed to account for the shape, which is more effective for blur representation. Then the gradient image is divided into equal-size blocks and the Tchebichef moments are calculated to characterize image shape. The energy of a block is computed as the sum of squared non-DC moment values. Finally, the proposed image blur score is defined as the variance-normalized moment energy, which is computed with the guidance of a visual saliency model to adapt to the characteristic of human visual system. The performance of the proposed method is evaluated on four public image quality databases. The experimental results demonstrate that our method can produce blur scores highly consistent with subjective evaluations. It also outperforms the state-of-the-art image blur metrics and several general-purpose no-reference quality metrics.
机译:模糊是图像质量感知的关键决定因素。通常,模糊会导致边缘扩散,从而导致图像形状变化。离散正交矩已被广泛研究为有效的形状描述符。直观上,模糊可以用离散的力矩表示,因为明显的模糊会影响图像的力矩大小。基于这种考虑,本文提出了一种基于离散Tchebichef矩的盲图像模糊评估算法。首先计算模糊图像的梯度以说明形状,这对于模糊表示更有效。然后将梯度图像分为相等大小的块,并计算Tchebichef矩以表征图像形状。块的能量计算为非DC矩值平方的总和。最后,将提出的图像模糊评分定义为方差归一化矩能量,该变量在视觉显着性模型的指导下进行计算以适应人类视觉系统的特征。在四个公共图像质量数据库上评估了该方法的性能。实验结果表明,我们的方法可以产生与主观评价高度一致的模糊得分。它还优于最新的图像模糊指标和几个通用的无参考质量指标。

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