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Identification of Disease-related Spatial Covariance Patterns using Neuroimaging Data
Published on: June 26, 2013
Shuwan Wang1, Christopher K Wikle2, Athanasios C Micheas2
1Harvard T.H. Chan School of Public Health, Boston, MA, U.S.A.
This study introduces BayesFlow, a novel computational method for analyzing spatial patterns. It significantly speeds up the analysis of clustered data, like microbial biofilms, using neural networks.
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