Predicting functional impairment in euthymic patients with mood disorder: A 5-year follow-up

被引:1
作者
de Aguiar, Kyara Rodrigues [1 ,2 ,3 ,4 ]
Montezano, Bruno Braga [1 ,2 ,3 ,4 ]
Feiten, Jacson Gabriel [1 ,2 ,3 ,4 ]
Watts, Devon [5 ]
Zimerman, Aline [1 ,2 ,3 ,4 ]
Mondin, Thaise Campos [6 ,7 ]
da Silva, Ricardo Azevedo [6 ]
Souza, Luciano Dias de Mattos [6 ]
Kapczinski, Flavio [1 ,2 ,3 ,4 ,8 ]
Cardoso, Taiane de Azevedo [8 ]
Jansen, Karen
Passos, Ives Cavalcante [1 ,2 ,3 ,4 ,9 ]
机构
[1] Hosp Clin Porto Alegre HCPA, Lab Mol Psychiat, Ctr Pesquisa Expt CPE, Porto Alegre, RS, Brazil
[2] Hosp Clin Porto Alegre HCPA, Ctr Pesquisa Clin CPC, Porto Alegre, RS, Brazil
[3] Univ Fed Rio Grande do Sul, Sch Med, Grad Program Psychiat & Behav Sci, Dept Psychiat, Porto Alegre, RS, Brazil
[4] Inst Nacl Ciencia & Tecnol Translac Med INCT TM, Porto Alegre, RS, Brazil
[5] Harvard Med Sch, Ctr Precis Psychiat, MGH Dept Psychiat, Boston, MA USA
[6] Univ Catolica Pelotas UCPel, Programa Posgrad Saude & Comportamento, Rua Goncalves Chaves 373,Sala 424 C, BR-96015560 Pelotas, RS, Brazil
[7] Univ Fed Pelotas UFPel, Proreitoria Assuntos Estudantis, Pelotas, RS, Brazil
[8] McMaster Univ, Dept Psychiat & Behav Neurosci, Hamilton, ON, Canada
[9] Univ Fed Rio Grande Sul UFRGS, Dept Psychiat, R Ramiro Barcelos,2400 Floresta, BR-90035002 Porto Alegre, RS, Brazil
关键词
Major depressive disorder; Bipolar disorder; Mood disorders; Functional impairment; Machine learning techniques; Predict functional performance; Predictive model; MAJOR DEPRESSIVE DISORDER; CHILDHOOD LIFE EVENTS; QUALITY-OF-LIFE; BIPOLAR DISORDER; ANXIETY DISORDERS; HEALTH; OUTCOMES; TRAUMA; RISK; METAANALYSIS;
D O I
10.1016/j.psychres.2023.115404
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
Major Depressive Disorder and Bipolar Disorder are psychiatric disorders associated with psychosocial impairment. Despite clinical improvement, functional complaints usually remain, mainly impairing occupational and cognitive performance. The aim of this study was to use machine learning techniques to predict functional impairment in patients with mood disorders. For that, analyzes were performed using a population-based cohort study. Participants diagnosed with a mood disorder at baseline and reassessed were considered (n = 282). Random forest (RF) with previous recursive feature selection and LASSO algorithms were applied to a training set with imputed data by bagged trees resulting in two main models. Following recursive feature selection, 25 variables were retained. The RF model had the best performance compared to LASSO. The most important variables in predicting functional impairment were sexual abuse, severity of depressive, anxiety, and somatic symptoms, physical neglect, emotional abuse, and physical abuse. The model demonstrated acceptable performance to predict functional impairment. However, our sample is composed of young participants and the model may not generalize to older individuals with mood disorders. More studies are needed in this direction. The presented calculator has clinical, sociodemographic, and environmental data, demonstrating that it is possible to use such information to predict functional performance.
引用
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页数:9
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