Detecting Schizophrenia with 3D Structural Brain MRI Using Deep Learning
Junhao Zhang, Vishwanatha M. Rao, Ye Tian, Yanting Yang, Nicolas, Acosta, Zihan Wan, Pin-Yu Lee, Chloe Zhang, Lawrence S. Kegeles, Scott A., Small, Jia Guo

TL;DR
This study demonstrates that deep learning applied to standard 3D T1-weighted brain MRI scans can accurately detect schizophrenia, highlighting specific subcortical regions as key diagnostic features.
Contribution
The paper introduces a deep learning model that outperforms existing benchmarks in schizophrenia detection using only standard T1-weighted MRI scans.
Findings
Deep learning model achieved AUC of 0.987 in classification.
Subcortical regions and ventricles are most predictive.
Model outperforms benchmark 3D CNN architecture.
Abstract
Schizophrenia is a chronic neuropsychiatric disorder that causes distinct structural alterations within the brain. We hypothesize that deep learning applied to a structural neuroimaging dataset could detect disease-related alteration and improve classification and diagnostic accuracy. We tested this hypothesis using a single, widely available, and conventional T1-weighted MRI scan, from which we extracted the 3D whole-brain structure using standard post-processing methods. A deep learning model was then developed, optimized, and evaluated on three open datasets with T1-weighted MRI scans of patients with schizophrenia. Our proposed model outperformed the benchmark model, which was also trained with structural MR images using a 3D CNN architecture. Our model is capable of almost perfectly (area under the ROC curve = 0.987) distinguishing schizophrenia patients from healthy controls on…
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Taxonomy
TopicsFunctional Brain Connectivity Studies · Advanced Neuroimaging Techniques and Applications · Advanced MRI Techniques and Applications
Methods3 Dimensional Convolutional Neural Network
