Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8814590 | Biological Psychiatry: Cognitive Neuroscience and Neuroimaging | 2018 | 53 Pages |
Abstract
Aberrant neural network connections predicted substance abuse treatment outcomes, which could illuminate new targets for developing interventions designed to reduce or eliminate substance use while facilitating long-term outcomes. This work represents the first application of machine-learning models of FNC analyses of functional magnetic resonance imaging data to predict which substance abusers would or would not complete treatment.
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Authors
Vaughn R. Steele, J. Michael Maurer, Mohammad R. Arbabshirani, Eric D. Claus, Brandi C. Fink, Vikram Rao, Vince D. Calhoun, Kent A. Kiehl,