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BMI trajectory and inflammatory effects on metabolic syndrome in adolescents

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Autor(es):
dos Santos, Wesley Ramos ; de Oliveira, Rafael Lage ; Paraboni, Ivandre
Número total de Autores: 3
Tipo de documento: Artigo Científico
Fonte: Language Resources and Evaluation; v. N/A, p. 28-pg., 2023-01-11.
Resumo

The present work introduces a novel dataset-hereby called the SetembroBR corpus-for the study and development of depression and anxiety disorder predictive models in the Portuguese language based on the information prior to a diagnosis. The corpus comprises both text- and network-related information related to 3.9 thousand Twitter users who self-reported a diagnosis or treatment for a mental disorder, and its use is illustrated by a number of experiments addressing the issues of depression and anxiety disorder prediction from social media data. Our present results are intended as a first step towards investigating how mental health statuses are expressed on Portuguese-speaking social media, and pave the way for computational applications intended to assist with a pressing issue of great social interest. (AU)

Processo FAPESP: 19/07665-4 - Centro de Inteligência Artificial
Beneficiário:Fabio Gagliardi Cozman
Modalidade de apoio: Auxílio à Pesquisa - Programa eScience e Data Science - Centros de Pesquisa em Engenharia
Processo FAPESP: 21/08213-0 - Análise da linguagem em redes sociais para detecção precoce de transtornos de saúde mental
Beneficiário:Ivandre Paraboni
Modalidade de apoio: Auxílio à Pesquisa - Regular