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一种用于分析位置平均会聚束电子衍射图案的深度卷积神经网络。

A deep convolutional neural network to analyze position averaged convergent beam electron diffraction patterns.

作者信息

Xu W, LeBeau J M

机构信息

Department of Materials Science and Engineering, North Carolina State University, Raleigh, NC 27695, USA.

Department of Materials Science and Engineering, North Carolina State University, Raleigh, NC 27695, USA.

出版信息

Ultramicroscopy. 2018 May;188:59-69. doi: 10.1016/j.ultramic.2018.03.004. Epub 2018 Mar 5.

Abstract

We establish a series of deep convolutional neural networks to automatically analyze position averaged convergent beam electron diffraction patterns. The networks first calibrate the zero-order disk size, center position, and rotation without the need for pretreating the data. With the aligned data, additional networks then measure the sample thickness and tilt. The performance of the network is explored as a function of a variety of variables including thickness, tilt, and dose. A methodology to explore the response of the neural network to various pattern features is also presented. Processing patterns at a rate of  ∼ 0.1 s/pattern, the network is shown to be orders of magnitude faster than a brute force method while maintaining accuracy. The approach is thus suitable for automatically processing big, 4D STEM data. We also discuss the generality of the method to other materials/orientations as well as a hybrid approach that combines the features of the neural network with least squares fitting for even more robust analysis. The source code is available at https://github.com/subangstrom/DeepDiffraction.

摘要

我们建立了一系列深度卷积神经网络,用于自动分析位置平均会聚束电子衍射图案。这些网络首先校准零阶盘尺寸、中心位置和旋转,无需对数据进行预处理。利用对齐后的数据,其他网络随后测量样品厚度和倾斜度。研究了网络性能作为包括厚度、倾斜度和剂量在内的各种变量的函数。还提出了一种探索神经网络对各种图案特征响应的方法。该网络以约0.1秒/图案的速度处理图案,结果表明其比暴力方法快几个数量级,同时保持准确性。因此,该方法适用于自动处理大型4D STEM数据。我们还讨论了该方法对其他材料/取向的通用性,以及一种将神经网络特征与最小二乘法拟合相结合以进行更稳健分析的混合方法。源代码可在https://github.com/subangstrom/DeepDiffraction获取。

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