Fast nonlocal filtering applied to electron cryomicroscopy

J. Darbon, Alexandre Cunha, T. Chan, S. Osher, G. Jensen
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引用次数: 280

Abstract

We present an efficient algorithm for nonlocal image filtering with applications in electron cryomicroscopy. Our denoising algorithm is a rewriting of the recently proposed nonlocal mean filter. It builds on the separable property of neighborhood filtering to offer a fast parallel and vectorized implementation in contemporary shared memory computer architectures while reducing the theoretical computational complexity of the original filter. In practice, our approach is much faster than a serial, non-vectorized implementation and it scales linearly with image size. We demonstrate its efficiency in data sets from Caulobacter crescentus tomograms and a cryoimage containing viruses and provide visual evidences attesting the remarkable quality of the nonlocal means scheme in the context of cryoimaging. With such development we provide biologists with an attractive filtering tool to facilitate their scientific discoveries.
快速非局部滤波在电子冷冻显微镜中的应用
提出了一种有效的非局部图像滤波算法,并应用于电子冷冻显微镜。我们的去噪算法是对最近提出的非局部均值滤波器的重写。它基于邻域滤波的可分离特性,在当代共享内存计算机体系结构中提供快速并行和矢量化实现,同时降低了原始滤波器的理论计算复杂度。在实践中,我们的方法比串行的、非矢量化的实现要快得多,并且它随图像大小线性扩展。我们证明了它在新月茎杆菌断层扫描和含有病毒的冷冻图像数据集上的有效性,并提供了视觉证据,证明了在冷冻成像背景下非局部均值方案的卓越质量。有了这样的发展,我们为生物学家提供了一个有吸引力的过滤工具,以促进他们的科学发现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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