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Developing a denoising filter for electron microscopy and tomography data in the cloud

机译:为云中的电子显微镜和断层扫描数据开发去噪滤波器

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摘要

The low radiation conditions and the predominantly phase-object image formation of cryo-electron microscopy (cryo-EM) result in extremely high noise levels and low contrast in the recorded micrographs. The process of single particle or tomographic 3D reconstruction does not completely eliminate this noise and is even capable of introducing new sources of noise during alignment or when correcting for instrument parameters. The recently developed Digital Paths Supervised Variance (DPSV) denoising filter uses local variance information to control regional noise in a robust and adaptive manner. The performance of the DPSV filter was evaluated in this review qualitatively and quantitatively using simulated and experimental data from cryo-EM and tomography in two and three dimensions. We also assessed the benefit of filtering experimental reconstructions for visualization purposes and for enhancing the accuracy of feature detection. The DPSV filter eliminates high-frequency noise artifacts (density gaps), which would normally preclude the accurate segmentation of tomography reconstructions or the detection of alpha-helices in single-particle reconstructions. This collaborative software development project was carried out entirely by virtual interactions among the authors using publicly available development and file sharing tools.Electronic supplementary materialThe online version of this article (doi:10.1007/s12551-012-0083-x) contains supplementary material, which is available to authorized users.
机译:低辐射条件和低温电子显微镜(cryo-EM)的主要是相位对象图像形成导致所记录的显微照片中的噪声水平很高且对比度较低。单粒子或断层3D重建的过程不能完全消除这种噪声,甚至可以在对准过程中或校正仪器参数时引入新的噪声源。最近开发的数字路径监督方差(DPSV)去噪滤波器使用本地方差信息以健壮和自适应的方式控制区域噪声。在本综述中,使用来自冷冻EM和层析成像的模拟和实验数据在二维和三维上定性和定量地评估了DPSV过滤器的性能。我们还评估了出于视觉目的和增强特征检测准确性而过滤实验重建的好处。 DPSV滤波器消除了高频噪声伪像(密度间隙),这些伪像通常会排除层析成像重建的精确分段或单粒子重建中α螺旋的检测。此协作软件开发项目完全由作者之间使用公共可用的开发和文件共享工具进行的虚拟交互完成。电子补充材料本文的在线版本(doi:10.1007 / s12551-012-0083-x)包含补充材料,其中适用于授权用户。

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