Arid
DOI10.1007/978-3-030-00928-1_97
Diffeomorphic Brain Shape Modelling Using Gauss-Newton Optimisation
Balbastre, Yael; Brudfors, Mikael; Bronik, Kevin; Ashburner, John
通讯作者Balbastre, Yael
会议名称21st International Conference on Medical Image Computing and Computer Assisted Intervention (MICCAI)
会议日期SEP 16-20, 2018
会议地点Granada, SPAIN
英文摘要

Shape modelling describes methods aimed at capturing the natural variability of shapes and commonly relies on probabilistic interpretations of dimensionality reduction techniques such as principal component analysis. Due to their computational complexity when dealing with dense deformation models such as diffeomorphisms, previous attempts have focused on explicitly reducing their dimension, diminishing de facto their flexibility and ability to model complex shapes such as brains. In this paper, we present a generative model of shape that allows the covariance structure of deformations to be captured without squashing their domain, resulting in better normalisation. An efficient inference scheme based on Gauss-Newton optimisation is used, which enables processing of 3D neuroimaging data. We trained this algorithm on segmented brains from the OASIS database, generating physiologically meaningful deformation trajectories. To prove the model's robustness, we applied it to unseen data, which resulted in equivalent fitting scores.


来源出版物MEDICAL IMAGE COMPUTING AND COMPUTER ASSISTED INTERVENTION - MICCAI 2018, PT I
ISSN0302-9743
EISSN1611-3349
出版年2018
卷号11070
页码862-870
ISBN978-3-030-00927-4
EISBN978-3-030-00928-1
出版者SPRINGER INTERNATIONAL PUBLISHING AG
类型Proceedings Paper
语种英语
国家England
收录类别CPCI-S
WOS记录号WOS:000477770600097
WOS关键词PRINCIPAL GEODESIC ANALYSIS
WOS类目Computer Science, Theory & Methods ; Imaging Science & Photographic Technology
WOS研究方向Computer Science ; Imaging Science & Photographic Technology
资源类型会议论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/307267
作者单位UCL, Wellcome Ctr Human Neuroimaging, London, England
推荐引用方式
GB/T 7714
Balbastre, Yael,Brudfors, Mikael,Bronik, Kevin,et al. Diffeomorphic Brain Shape Modelling Using Gauss-Newton Optimisation[C]:SPRINGER INTERNATIONAL PUBLISHING AG,2018:862-870.
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