IGUANe: a 3D generalizable CycleGAN for multicenter harmonization of brain MR images
Vincent Roca, Gr\'egory Kuchcinski, Jean-Pierre Pruvo, Dorian, Manouvriez, Renaud Lopes

TL;DR
IGUANe is a novel 3D CycleGAN-based model designed for harmonizing brain MRI images across multiple sites, effectively handling unknown acquisition sites and preserving biological variability.
Contribution
It introduces a many-to-one domain translation architecture enabling universal harmonization of MR images from diverse scanners, improving consistency while maintaining individual and biological information.
Findings
Outperforms existing methods in preserving individual image features.
Effectively harmonizes images from unseen sites.
Maintains age and disease-related volumetric patterns.
Abstract
In MRI studies, the aggregation of imaging data from multiple acquisition sites enhances sample size but may introduce site-related variabilities that hinder consistency in subsequent analyses. Deep learning methods for image translation have emerged as a solution for harmonizing MR images across sites. In this study, we introduce IGUANe (Image Generation with Unified Adversarial Networks), an original 3D model that leverages the strengths of domain translation and straightforward application of style transfer methods for multicenter brain MR image harmonization. IGUANe extends CycleGAN by integrating an arbitrary number of domains for training through a many-to-one architecture. The framework based on domain pairs enables the implementation of sampling strategies that prevent confusion between site-related and biological variabilities. During inference, the model can be applied to any…
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Taxonomy
TopicsMedical Image Segmentation Techniques · Advanced MRI Techniques and Applications · Medical Imaging Techniques and Applications
MethodsHuMan(Expedia)||How do I get a human at Expedia? · Batch Normalization · Residual Connection · Residual Block · *Communicated@Fast*How Do I Communicate to Expedia? · Sigmoid Activation · Tanh Activation · Cycle Consistency Loss · Convolution · Instance Normalization
