Classification of psychiatric symptoms using deep interaction networks: the CASPIAN-IV study

Author:

Marateb Hamid Reza,Tasdighi Zahra,Mohebian Mohammad Reza,Naghavi Azam,Hess Moritz,Motlagh Mohammad Esmaiel,Heshmat Ramin,Mansourian Marjan,Mañanas Miguel Angel,Binder Harald,Kelishadi Roya

Abstract

AbstractIdentifying the possible factors of psychiatric symptoms among children can reduce the risk of adverse psychosocial outcomes in adulthood. We designed a classification tool to examine the association between modifiable risk factors and psychiatric symptoms, defined based on the Persian version of the WHO-GSHS questionnaire in a developing country. Ten thousand three hundred fifty students, aged 6–18 years from all Iran provinces, participated in this study. We used feature discretization and encoding, stability selection, and regularized group method of data handling (GMDH) to classify the a priori specific factors (e.g., demographic, sleeping-time, life satisfaction, and birth-weight) to psychiatric symptoms. Self-rated health was the most critical feature. The selected modifiable factors were eating breakfast, screentime, salty snack for depression symptom, physical activity, salty snack for worriedness symptom, (abdominal) obesity, sweetened beverage, and sleep-hour for mild-to-moderate emotional symptoms. The area under the ROC curve of the GMDH was 0.75 (CI 95% 0.73–0.76) for the analyzed psychiatric symptoms using threefold cross-validation. It significantly outperformed the state-of-the-art (adjusted p < 0.05; McNemar's test). In this study, the association of psychiatric risk factors and the importance of modifiable nutrition and lifestyle factors were emphasized. However, as a cross-sectional study, no causality can be inferred.

Funder

European Union's Horizon 2020 research and innovation programme under the Marie Skłodowska-Curie grant agreement

The Agency for Business Competitiveness of the Government of Catalonia

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

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