Literature DB >> 33716478

Gum-Net: Unsupervised Geometric Matching for Fast and Accurate 3D Subtomogram Image Alignment and Averaging.

Xiangrui Zeng1, Min Xu1.   

Abstract

We propose a Geometric unsupervised matching Network (Gum-Net) for finding the geometric correspondence between two images with application to 3D subtomogram alignment and averaging. Subtomogram alignment is the most important task in cryo-electron tomography (cryo-ET), a revolutionary 3D imaging technique for visualizing the molecular organization of unperturbed cellular landscapes in single cells. However, subtomogram alignment and averaging are very challenging due to severe imaging limits such as noise and missing wedge effects. We introduce an end-to-end trainable architecture with three novel modules specifically designed for preserving feature spatial information and propagating feature matching information. The training is performed in a fully unsupervised fashion to optimize a matching metric. No ground truth transformation information nor category-level or instance-level matching supervision information is needed. After systematic assessments on six real and nine simulated datasets, we demonstrate that Gum-Net reduced the alignment error by 40 to 50% and improved the averaging resolution by 10%. Gum-Net also achieved 70 to 110 times speedup in practice with GPU acceleration compared to state-of-the-art subtomogram alignment methods. Our work is the first 3D unsupervised geometric matching method for images of strong transformation variation and high noise level. The training code, trained model, and datasets are available in our open-source software AITom.

Entities:  

Year:  2020        PMID: 33716478      PMCID: PMC7955792          DOI: 10.1109/cvpr42600.2020.00413

Source DB:  PubMed          Journal:  Proc IEEE Comput Soc Conf Comput Vis Pattern Recognit        ISSN: 1063-6919


  36 in total

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Journal:  J Struct Biol       Date:  2015-08-29       Impact factor: 2.867

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8.  Zernike phase contrast cryo-electron tomography.

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Journal:  J Struct Biol       Date:  2010-03-27       Impact factor: 2.867

9.  In Situ Structure of Neuronal C9orf72 Poly-GA Aggregates Reveals Proteasome Recruitment.

Authors:  Qiang Guo; Carina Lehmer; Antonio Martínez-Sánchez; Till Rudack; Florian Beck; Hannelore Hartmann; Manuela Pérez-Berlanga; Frédéric Frottin; Mark S Hipp; F Ulrich Hartl; Dieter Edbauer; Wolfgang Baumeister; Rubén Fernández-Busnadiego
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10.  Reducing effects of particle adsorption to the air-water interface in cryo-EM.

Authors:  Alex J Noble; Hui Wei; Venkata P Dandey; Zhening Zhang; Yong Zi Tan; Clinton S Potter; Bridget Carragher
Journal:  Nat Methods       Date:  2018-09-24       Impact factor: 28.547

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  3 in total

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2.  Weakly Supervised 3D Semantic Segmentation Using Cross-Image Consensus and Inter-Voxel Affinity Relations.

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Journal:  Proc IEEE Int Conf Comput Vis       Date:  2021-10

3.  Harmony: A Generic Unsupervised Approach for Disentangling Semantic Content from Parameterized Transformations.

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Journal:  Proc IEEE Comput Soc Conf Comput Vis Pattern Recognit       Date:  2022-09-27
  3 in total

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