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An index-based system for early alerts of potential zoonotic disease outbreaks.

Created on 26 Aug 2026

Authors

Jaqueline S Angelo, Livia Abdalla, Douglas A Augusto, Marcia Chame, Eduardo Krempser

Published in

PloS one. Volume 21. Issue 8. Pages e0356739. Epub Aug 25, 2026.

Abstract

The Information System on Wildlife Health (SISS-Geo) is a free platform designed for the real-time collection of georeferenced data on wildlife health and environmental conditions via mobile devices. It serves as a collaborative tool, enabling health professionals, researchers, environmental managers, and the general public to report information about wildlife health occurrences directly within the system. Since its launch in 2014, SISS-Geo has been successfully applied in supporting decision-making during significant wildlife health events in Brazil. In this paper, we introduce a dynamic alert system based on a Multi-Attribute Zoonotic Alert Index (Z-Alert) to enhance disease outbreak detection and response in wildlife. The proposed approach improves the current alert system of the SISS-Geo platform by integrating clustering techniques with multi-objective optimization. The clustering stage groups spatiotemporally related SISS-Geo records, including observations of animals reported as alive, dead, or sick, allowing the identification of patterns relevant for epidemiological surveillance. Each identified cluster is assigned a numerical alert index, the Z-Alert index, reflecting its level of attention, based on optimally weighted attributes such as the percentage of dead animals, temporal interval, and geographical spread. The system also offers customization alert thresholds, allowing health managers to adapt the alert system to their specific needs. To validate the model, we used historical Yellow Fever case data from Brazil's Ministry of Health. By supporting surveillance teams in prioritizing prevention and investigation actions, the system enhances the capacity of public health authorities to respond effectively through supporting risk assessment, optimizing resource allocation, and promoting cost-effective strategies for outbreak control.

PMID:
42640990
Bibliographic data and abstract were imported from PubMed on 26 Aug 2026.

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