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Electrical Engineering and Systems Science > Image and Video Processing

arXiv:2303.10700 (eess)
[Submitted on 19 Mar 2023]

Title:Conditional Deformable Image Registration with Spatially-Variant and Adaptive Regularization

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Abstract:Deep learning-based image registration approaches have shown competitive performance and run-time advantages compared to conventional image registration methods. However, existing learning-based approaches mostly require to train separate models with respect to different regularization hyperparameters for manual hyperparameter searching and often do not allow spatially-variant regularization. In this work, we propose a learning-based registration approach based on a novel conditional spatially adaptive instance normalization (CSAIN) to address these challenges. The proposed method introduces a spatially-variant regularization and learns its effect of achieving spatially-adaptive regularization by conditioning the registration network on the hyperparameter matrix via CSAIN. This allows varying of spatially adaptive regularization at inference to obtain multiple plausible deformations with a single pre-trained model. Additionally, the proposed method enables automatic hyperparameter optimization to avoid manual hyperparameter searching. Experiments show that our proposed method outperforms the baseline approaches while achieving spatially-variant and adaptive regularization.
Comments:5 pages, 5 figures, 1 tables. The paper is accepted by the IEEE International Symposium on Biomedical Imaging (ISBI) 2023
Subjects:Image and Video Processing (eess.IV); Computer Vision and Pattern Recognition (cs.CV)
Cite as:arXiv:2303.10700 [eess.IV]
 (orarXiv:2303.10700v1 [eess.IV] for this version)
 https://doi.org/10.48550/arXiv.2303.10700
arXiv-issued DOI via DataCite

Submission history

From: Yinsong Wang [view email]
[v1] Sun, 19 Mar 2023 16:12:06 UTC (4,470 KB)
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