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Consistent brain structural abnormalities and multisite individualised classification of schizophrenia using deep neural networks.

Authors :
Cui, Yue
Li, Chao
Liu, Bing
Sui, Jing
Song, Ming
Chen, Jun
Chen, Yunchun
Guo, Hua
Li, Peng
Lu, Lin
Lv, Luxian
Ning, Yuping
Wan, Ping
Wang, Huaning
Wang, Huiling
Wu, Huawang
Yan, Hao
Yan, Jun
Yang, Yongfeng
Zhang, Hongxing
Source :
British Journal of Psychiatry; Dec2022, Vol. 221 Issue 6, p732-739, 8p
Publication Year :
2022

Abstract

<bold>Background: </bold>Previous analyses of grey and white matter volumes have reported that schizophrenia is associated with structural changes. Deep learning is a data-driven approach that can capture highly compact hierarchical non-linear relationships among high-dimensional features, and therefore can facilitate the development of clinical tools for making a more accurate and earlier diagnosis of schizophrenia.<bold>Aims: </bold>To identify consistent grey matter abnormalities in patients with schizophrenia, 662 people with schizophrenia and 613 healthy controls were recruited from eight centres across China, and the data from these independent sites were used to validate deep-learning classifiers.<bold>Method: </bold>We used a prospective image-based meta-analysis of whole-brain voxel-based morphometry. We also automatically differentiated patients with schizophrenia from healthy controls using combined grey matter, white matter and cerebrospinal fluid volumetric features, incorporated a deep neural network approach on an individual basis, and tested the generalisability of the classification models using independent validation sites.<bold>Results: </bold>We found that statistically reliable schizophrenia-related grey matter abnormalities primarily occurred in regions that included the superior temporal gyrus extending to the temporal pole, insular cortex, orbital and middle frontal cortices, middle cingulum and thalamus. Evaluated using leave-one-site-out cross-validation, the performance of the classification of schizophrenia achieved by our findings from eight independent research sites were: accuracy, 77.19-85.74%; sensitivity, 75.31-89.29% and area under the receiver operating characteristic curve, 0.797-0.909.<bold>Conclusions: </bold>These results suggest that, by using deep-learning techniques, multidimensional neuroanatomical changes in schizophrenia are capable of robustly discriminating patients with schizophrenia from healthy controls, findings which could facilitate clinical diagnosis and treatment in schizophrenia. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00071250
Volume :
221
Issue :
6
Database :
Complementary Index
Journal :
British Journal of Psychiatry
Publication Type :
Academic Journal
Accession number :
160309798
Full Text :
https://doi.org/10.1192/bjp.2022.22