Big Data-Planetary Health approach for evaluating the Brazilian Dengue Control Program.


Journal

Revista de saude publica
ISSN: 1518-8787
Titre abrégé: Rev Saude Publica
Pays: Brazil
ID NLM: 0135043

Informations de publication

Date de publication:
2024
Historique:
received: 17 04 2023
accepted: 29 09 2023
medline: 8 5 2024
pubmed: 8 5 2024
entrez: 8 5 2024
Statut: epublish

Résumé

This study aims to integrate the concepts of planetary health and big data into the Donabedian model to evaluate the Brazilian dengue control program in the state of São Paulo. Data science methods were used to integrate and analyze dengue-related data, adding context to the structure and outcome components of the Donabedian model. This data, considering the period from 2010 to 2019, was collected from sources such as Department of Informatics of the Unified Health System (DATASUS), the Brazilian Institute of Geography and Statistics (IBGE), WorldClim, and MapBiomas. These data were integrated into a Data Warehouse. K-means algorithm was used to identify groups with similar contexts. Then, statistical analyses and spatial visualizations of the groups were performed, considering socioeconomic and demographic variables, soil, health structure, and dengue cases. Using climate variables, the K-means algorithm identified four groups of municipalities with similar characteristics. The comparison of their indicators revealed certain patterns in the municipalities with the worst performance in terms of dengue case outcomes. Although presenting better economic conditions, these municipalities held a lower average number of community healthcare agents and basic health units per inhabitant. Thus, economic conditions did not reflect better health structure among the three studied indicators. Another characteristic of these municipalities is urbanization. The worst performing municipalities presented a higher rate of urban population and human activity related to urbanization. This methodology identified important deficiencies in the implementation of the dengue control program in the state of São Paulo. The integration of several databases and the use of Data Science methods allowed the evaluation of the program on a large scale, considering the context in which activities are conducted. These data can be used by the public administration to plan actions and invest according to the deficiencies of each location.

Identifiants

pubmed: 38716929
pii: S0034-89102024000100215
doi: 10.11606/s1518-8787.2024058005491
pii:
doi:

Types de publication

Journal Article

Langues

eng por

Sous-ensembles de citation

IM

Pagination

17

Auteurs

Fernando Xavier (F)

Universidade de São Paulo. Programa de Pós-Graduação em Engenharia Elétrica. São Paulo, SP, Brasil.

Gerson Laurindo Barbosa (GL)

Secretaria de Estado da Saúde de São Paulo Instituto Pasteur. Technical Area of Diseases Linked to Vectors and Intermediate Hosts. São Paulo, SP, Brasil.

Cristiano Corrêa de Azevedo Marques (CCA)

Secretaria de Estado da Saúde de São Paulo Instituto Pasteur. Technical Area of Diseases Linked to Vectors and Intermediate Hosts. São Paulo, SP, Brasil.

Antonio Mauro Saraiva (AM)

Universidade de São Paulo. Escola Politécnica. Departamento de Engenharia de Computação e Sistemas Digitais. São Paulo, SP, Brasil.

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Classifications MeSH