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Accurate and Efficient Method for Smoothly Space-Variant Gaussian Blurring

机译:平稳有效的空间变异高斯模糊方法

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This paper presents a computationally efficient algorithm for smoothly space-variant Gaussian blurring of images. The proposed algorithm uses a specialized filter bank with optimal filters computed through principal component analysis. This filter bank approximates perfect space-variant Gaussian blurring to arbitrarily high accuracy and at greatly reduced computational cost compared to the brute force approach of employing a separate low-pass filter at each image location. This is particularly important for spatially variant image processing such as foveated coding. Experimental results show that the proposed algorithm provides typically 10 to 15 dB better approximation of perfect Gaussian blurring than the blended Gaussian pyramid blurring approach when using a bank of just eight filters.
机译:本文提出了一种计算有效的算法,用于平滑图像的空间变化高斯模糊。提出的算法使用专门的滤波器组,并通过主成分分析计算出最佳滤波器。与在每个图像位置采用单独的低通滤波器的强力方法相比,该滤波器组将完美的空间变量高斯模糊近似为任意高精度,并且大大降低了计算成本。这对于诸如偏心编码的空间变异图像处理特别重要。实验结果表明,与仅使用八个滤波器组的混合高斯金字塔模糊方法相比,所提出的算法通常能提供比理想高斯模糊效果更好的10至15 dB近似值。

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