Decision model on the demographic profile for tuberculosis control using fuzzy logic

Authors

DOI:

https://doi.org/10.5216/ree.v17i2.27643

Keywords:

Tuberculosis, Relative Risk (Public Health), Spatial Analysis, Fuzzy Logic, Public Health Nursing

Abstract

This study aimed to describe the relationship between demographic factors and the involvement of tuberculosis by applying a decision support model based on fuzzy logic to classify the regions as priority and non-priority in the city of João Pessoa, state of Paraíba (PB). As data source, we used the Notifiable Diseases Information System between 2009 and 2011. We chose the descriptive analysis, relative risk (RR), spatial distribution and fuzzy logic. The total of 1,245 cases remained in the study, accounting for 37.02% of cases in 2009. High and low risk clusters were identified, and the RR was higher among men (8.47), with 12 clusters, and among those uneducated (11.65), with 13 clusters. To demonstrate the functionality of the model was elected the year with highest number of cases, and the municipality district with highest population. The methodology identified priority areas, guiding managers to make decisions that respect the local particularities.

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Author Biographies

  • Laisa Ribeiro de Sá, Federal University of Paraíba
    Nurse, Master in Models of Decision and Health. PhD Student at the Postgraduate Program in Models of Decision and Health, Universidade Federal da Paraíba (UFPB). João pessoa, PB, Brazil. E-mail: isa8910@hotmail.com.
  • Jordana de Almeida Nogueira, Federal University of Paraíba
    Nurse, PhD in Nursing. Associate Professor of the Health Sciences Center, UFPB. João Pessoa, PB, Brazil. E-mail: jal_nogueira@yahoo.com.br.
  • Ronei Marcos de Moraes, Federal University of Paraíba
    Statistician, PhD in Applied Computing. Associate Professor of the Department of Statistics, UFPB. João Pessoa, PB, Brazil. E-mail: ronei@de.ufpb.br.

Published

2015-06-30

Issue

Section

Original Article