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Statistical modeling of perceptual blur degradation in the wavelet domain

机译:小波域感知模糊退化的统计模型

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摘要

To automatically detect blur in images, without needing to perform blur kernel estimation, we develop a new blur descriptor. It is modeled by image perceptual gradient statistics. As blurring affects especially edges, the proposed idea turns on extract specific statistical features from the perceptual edge map in the wavelet domain using the just noticeable blur concept (JNB). Extracted statistical features are used to robustly classify images as perceptually blurred or sharp using the support vector machines (SVM). The proposed descriptor performance is evaluated in terms of classification accuracy across different datasets. Obtained results revealed high correlation values of the proposed perceptual statistical features against subjective scores.
机译:为了自动检测图像中的模糊而不需要执行模糊内核估计,我们开发了一个新的模糊描述符。它通过图像感知梯度统计来建模。由于模糊会特别影响边缘,因此所提出的想法使用了刚注意到的模糊概念(JNB),从小波域的感知边缘图中提取特定的统计特征。提取的统计特征用于使用支持向量机(SVM)将图像稳健地分类为感知模糊或清晰。根据不同数据集的分类准确性评估了拟议的描述符性能。获得的结果表明,拟议的感知统计特征与主观得分之间具有很高的相关性。

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