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eess.IV2024

Super-resolution multi-contrast unbiased eye atlases with deep probabilistic refinement

Ho Hin Lee, Adam M. Saunders, Michael E. Kim +15

Purpose: Eye morphology varies significantly across the population, especially for the orbit and optic nerve. These variations limit the feasibility and robustness of generalizing…

eess.SP2024

Sensitivity of quantitative diffusion MRI tractography and microstructure to anisotropic spatial sampling

Elyssa M. McMaster, Nancy R. Newlin, Chloe Cho +10

Purpose: Diffusion weighted MRI (dMRI) and its models of neural structure provide insight into human brain organization and variations in white matter. A recent study by McMaster,…

cs.DC2024

Scalable quality control on processing of large diffusion-weighted and structural magnetic resonance imaging datasets

Michael E. Kim, Chenyu Gao, Karthik Ramadass +16

Proper quality control (QC) is time consuming when working with large-scale medical imaging datasets, yet necessary, as poor-quality data can lead to erroneous conclusions or poorl…

cs.CV2024

Field-of-View Extension for Brain Diffusion MRI via Deep Generative Models

Chenyu Gao, Shunxing Bao, Michael Kim +13

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 (F…

cs.DC2024

Scalable, reproducible, and cost-effective processing of large-scale medical imaging datasets

Michael E. Kim, Karthik Ramadass, Chenyu Gao +11

Curating, processing, and combining large-scale medical imaging datasets from national studies is a non-trivial task due to the intense computation and data throughput required, va…

physics.med-ph2024

Harmonized connectome resampling for variance in voxel sizes

Elyssa M. McMaster, Nancy R. Newlin, Gaurav Rudravaram +10

To date, there has been no comprehensive study characterizing the effect of diffusion-weighted magnetic resonance imaging voxel resolution on the resulting connectome for high reso…