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Activities
Integrating Domain Knowledge into Medical Image Registration: From Pairwise to Groupwise Approaches
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Reporter:
Jinming Duan, Associate Professor, The University of Manchester, UK
Inviter:
Chong Chen, Associate Professor
Subject:
Integrating Domain Knowledge into Medical Image Registration: From Pairwise to Groupwise Approaches
Time and place:
15:00-16:00 July 23 (Wednesday) , S713
Abstract:

This presentation will begin by detailing how domain knowledge can be effectively incorporated into neural network architectures for pairwise medical image registration. I will highlight how such integration improves the speed, accuracy, and data efficiency of the registration process, addressing the challenges posed by large and complex medical datasets. I will then explore model-driven groupwise registration techniques for atlas construction. The resulting atlas enables one-shot segmentation, where a single manual annotation of the template image can be accurately propagated to individual subjects through the learned deformations. Building on the estimated atlas geometry and deformations, I will further introduce a novel statistical shape modelling strategy that implicitly generates new anatomical heart shapes. This method maintains exact point-to-point correspondence and prevents mesh folding, while ensuring anatomical plausibility using diffeomorphic transformations.