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No-Reference Image Blur Assessment in the DWT Domain and Blurred Image Classification

机译:DWT域中的无参考图像模糊评估和模糊图像分类

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We propose several new no-reference/blind image quality indices for blur assessment based on the discrete wavelet transform (DWT) and demonstrate that a given image can be classified based on blur by using these indices. Our approach relies on the sharpness, granularity, and L-norm estimation of the given image in the DWT domains with a relatively long support width. Unlike conventional methods, the reference image is produced from the given image without computing special statistics or using unsupervised methods. Instead, we produce the reference image from the given image by using certain sharpening and denoising methods, and by adopting ideas from reference image quality measures such as the PSNR and SSIM in the DWT domain. We describe the detailed procedure of our method and show some experimental results that demonstrate the high performance.
机译:我们提出了几种基于离散小波变换(DWT)的模糊评估的新的无参考/盲图像质量指标,并证明了使用这些指标可以基于模糊对给定图像进行分类。我们的方法依赖于DWT域中具有相对较长支持宽度的给定图像的清晰度,粒度和L范数估计。与常规方法不同,参考图像是从给定图像生成的,而无需计算特殊统计信息或使用无监督方法。取而代之的是,我们通过使用某些锐化和去噪方法,并从DWT域中的PSNR和SSIM等参考图像质量度量中采用思想,从给定图像中生成参考图像。我们描述了我们的方法的详细过程,并显示了一些实验结果证明了该高性能。

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