Field-of-View Extension for Brain Diffusion MRI via Deep Generative Models
Chenyu Gao, Shunxing Bao, Michael Kim, Nancy Newlin, Praitayini, Kanakaraj, Tianyuan Yao, Gaurav Rudravaram, Yuankai Huo, Daniel Moyer, Kurt, Schilling, Walter Kukull, Arthur Toga, Derek Archer, Timothy Hohman, Bennett, Landman, Zhiyuan Li

TL;DR
This paper introduces a deep generative model to impute missing slices in diffusion MRI scans with incomplete FOV, enhancing whole-brain tractography and analysis of brain connectivity, especially in Alzheimer's disease research.
Contribution
The work presents a novel deep generative framework for imputing missing brain regions in dMRI scans with incomplete FOV, improving tractography accuracy and data usability.
Findings
Achieved high PSNR and SSIM scores on WRAP and NACC datasets.
Significantly increased Dice scores for tractography accuracy.
Reduced uncertainty in bundle analysis related to Alzheimer's Disease.
Abstract
Purpose: In diffusion MRI (dMRI), the volumetric and bundle analyses of whole-brain tissue microstructure and connectivity can be severely impeded by an incomplete field-of-view (FOV). This work aims to develop a method for imputing the missing slices directly from existing dMRI scans with an incomplete FOV. We hypothesize that the imputed image with complete FOV can improve the whole-brain tractography for corrupted data with incomplete FOV. Therefore, our approach provides a desirable alternative to discarding the valuable dMRI data, enabling subsequent tractography analyses that would otherwise be challenging or unattainable with corrupted data. Approach: We propose a framework based on a deep generative model that estimates the absent brain regions in dMRI scans with incomplete FOV. The model is capable of learning both the diffusion characteristics in diffusion-weighted images…
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Taxonomy
MethodsDiffusion
