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用于实时断层重建的动态压缩感知

Dynamic compressed sensing for real-time tomographic reconstruction.

作者信息

Schwartz Jonathan, Zheng Huihuo, Hanwell Marcus, Jiang Yi, Hovden Robert

机构信息

Department of Material Science and Engineering, Ann Arbor,University of Michigan, MI, USA.

Argonne Leadership Computing Facility, Argonne National Laboratory, Lemont, IL, USA.

出版信息

Ultramicroscopy. 2020 Dec;219:113122. doi: 10.1016/j.ultramic.2020.113122. Epub 2020 Oct 9.

Abstract

Electron tomography has achieved higher resolution and quality at reduced doses with recent advances in compressed sensing. Compressed sensing (CS) exploits the inherent sparse signal structure to efficiently reconstruct three-dimensional (3D) volumes at the nanoscale from undersampled measurements. However, the process bottlenecks 3D reconstruction with computation times that run from hours to days. Here we demonstrate a framework for dynamic compressed sensing that produces a 3D specimen structure that updates in real-time as new specimen projections are collected. Researchers can begin interpreting 3D specimens as data is collected to facilitate high-throughput and interactive analysis. Using scanning transmission electron microscopy (STEM), we show that dynamic compressed sensing accelerates the convergence speed by ~3-fold while also reducing its error by 27% for a Au/SrTiO nanoparticle specimen. Before a tomography experiment is completed, the 3D tomogram has interpretable structure within ~33% of completion and fine details are visible as early as ~66%. Upon completion of an experiment, a high-fidelity 3D visualization is produced without further delay. Additionally, reconstruction parameters that tune data fidelity can be manipulated throughout the computation without re-running the entire process.

摘要

随着压缩感知技术的最新进展,电子断层扫描在降低剂量的情况下实现了更高的分辨率和质量。压缩感知(CS)利用固有的稀疏信号结构,从欠采样测量中高效重建纳米尺度的三维(3D)体积。然而,该过程在三维重建方面存在瓶颈,计算时间从数小时到数天不等。在此,我们展示了一种动态压缩感知框架,该框架能生成一个三维样本结构,随着新的样本投影的收集实时更新。研究人员可以在收集数据时就开始解读三维样本,以促进高通量和交互式分析。使用扫描透射电子显微镜(STEM),我们表明动态压缩感知将收敛速度提高了约3倍,同时对于金/钛酸锶纳米颗粒样本,其误差也降低了27%。在断层扫描实验完成前,三维断层图像在完成约33%时就具有可解读的结构,早在完成约33%时就能看到精细细节。实验完成后,无需进一步延迟即可生成高保真的三维可视化图像。此外,在整个计算过程中可以操纵调整数据保真度的重建参数,而无需重新运行整个过程。

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