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VIDEO DENOISING BASED ON A BIVARIATE CAUCHY DISTRIBUTION IN 3-D COMPLEX WAVELET DOMAIN

机译:基于三维复合小波域的二元CAUCHY分布的视频去噪

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This paper presents a new video denoising algorithm based on the modeling of wavelet coefficients in each subband with a bivariate Cauchy probability density function (pdf). This bivariate pdf takes into account the statistical dependency of wavelet coefficients in adjacent scales. Within this framework, we describe a novel method for video denoising based on designing a maximum a posteriori (MAP) estimator employing a bivariate Cauchy random variable. Because separate 3-D transforms, such as ordinary 3-D wavelet transforms, have visual artifacts that degrade their performance in applications, we implement our algorithm in 3-D complex wavelet transform. This non-separable and oriented transform provides a motion-based multiscale decomposition for video that separates in its subbands motion along different directions. In addition, we use our denoising algorithm in 2-D complex wavelet domain, where the 2-D transform is applied to each frame individually. Despite the simplicity of our method in its implementation, our denoising results achieves better performance than several published methods both visually and in terms of peak signal-to-noise ratio (PSNR).
机译:本文介绍了一种新的视频去噪算法,其基于具有二元CAUCHY概率密度函数(PDF)的每个子带中的小波系数的建模。这种双变量PDF考虑了小波系数在相邻尺度中的统计依赖性。在此框架内,我们描述了一种基于设计具有二元CAUCHY随机变量的最大后验(MAP)估计的视频去噪的新方法。由于单独的3-D变换(例如普通的3-D小波变换)具有降低应用程序性能的视觉伪影,我们在三维复杂小波变换中实现了我们的算法。这种不可分离和定向的变换提供了基于运动的多尺度分解,用于沿着不同方向分隔其子带运动中的视频。此外,我们在二维复杂小波域中使用我们的去噪算法,其中将2-D变换单独应用于每个帧。尽管我们的实施方法很简单,但我们的去噪结果比视觉和峰值信噪比(PSNR)在视觉上和峰值信噪比(PSNR)方面比几种公布的方法实现更好的性能。

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