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Fast Bilateral Filtering for Denoising Large 3D Images

机译:快速双边滤波可对大型3D图像进行降噪

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摘要

A fast implementation of bilateral filtering is presented, which is based on an optimal expansion of the filter kernel into a sum of factorized terms. These terms are computed by minimizing the expansion error in the mean-square-error sense. This leads to a simple and elegant solution in terms of eigenvectors of a square matrix. In this way, the bilateral filter is applied through computing a few Gaussian convolutions, for which very efficient algorithms are readily available. Moreover, the expansion functions are optimized for the histogram of the input image, leading to improved accuracy. It is shown that this further optimization it made possible by removing the commonly deployed constrain of shiftability of the basis functions. Experimental validation is carried out in the context of digital rock imaging. Results on large 3D images of rock samples show the superiority of the proposed method with respect to other fast approximations of bilateral filtering.
机译:提出了一种双边过滤的快速实现,它基于将过滤器内核最佳分解为分解项的总和。通过最小化均方误差意义上的扩展误差来计算这些项。这导致就方阵的特征向量而言简单而优雅的解决方案。通过这种方式,通过计算一些高斯卷积来应用双边滤波器,对于这些高斯卷积,非常有效的算法是容易获得的。此外,扩展功能针对输入图像的直方图进行了优化,从而提高了准确性。结果表明,通过消除通常部署的基函数可移动性约束,这种进一步的优化成为可能。实验验证是在数字岩石成像的背景下进行的。岩石样品的大3D图像上的结果表明,相对于双边滤波的其他快速近似方法,该方法具有优越性。

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