Joint Progressive and Coarse-to-fine Registration of Brain MRI via Deformation Field Integration and Non-Rigid Feature Fusion
Jinxin Lv, Zhiwei Wang, Hongkuan Shi, Haobo Zhang, Sheng Wang, Yilang, Wang, and Qiang Li

TL;DR
This paper introduces a unified framework for brain MRI registration that combines progressive and coarse-to-fine strategies using deformation field integration and non-rigid feature fusion, improving alignment accuracy.
Contribution
It proposes a novel dual-encoder U-Net architecture with modules for deformation field integration and feature fusion, enabling simultaneous progressive and coarse-to-fine registration.
Findings
Achieves up to 8% improvement in average Dice score.
Outperforms methods using only progressive or coarse-to-fine registration.
Demonstrates robustness on private and public datasets.
Abstract
Registration of brain MRI images requires to solve a deformation field, which is extremely difficult in aligning intricate brain tissues, e.g., subcortical nuclei, etc. Existing efforts resort to decomposing the target deformation field into intermediate sub-fields with either tiny motions, i.e., progressive registration stage by stage, or lower resolutions, i.e., coarse-to-fine estimation of the full-size deformation field. In this paper, we argue that those efforts are not mutually exclusive, and propose a unified framework for robust brain MRI registration in both progressive and coarse-to-fine manners simultaneously. Specifically, building on a dual-encoder U-Net, the fixed-moving MRI pair is encoded and decoded into multi-scale deformation sub-fields from coarse to fine. Each decoding block contains two proposed novel modules: i) in Deformation Field Integration (DFI), a single…
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Taxonomy
TopicsMedical Image Segmentation Techniques · Brain Tumor Detection and Classification · Medical Imaging and Analysis
MethodsConvolution · *Communicated@Fast*How Do I Communicate to Expedia? · Concatenated Skip Connection · Max Pooling · U-Net
