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Analysing trends and forecasting malaria epidemics in Madagascar using a sentinel surveillance network: a web-based
Florian Girond1,2, Laurence Randrianasolo3, Lea Randriamampionona3,4
1Institut Pasteur de Madagascar, Antananarivo, Madagascar. florian.girond@gmail.com.
Background:
The use of a malaria early warning system (MEWS) to trigger prompt public health interventions is a key step in adding value to the epidemiological data routinely collected by sentinel surveillance systems.
Methods:
This study describes a system using various epidemic thresholds and a forecasting component with the support of new technologies to improve the performance of a sentinel MEWS. Malaria-related data from 21 sentinel sites collected by Short Message Service are automatically analysed to detect malaria trends and malaria outbreak alerts with automated feedback reports.
Results:
Roll Back Malaria partners can, through a user-friendly web-based tool, visualize potential outbreaks and generate a forecasting model. The system already demonstrated its ability to detect malaria outbreaks in Madagascar in 2014.
Conclusion:
This approach aims to maximize the usefulness of a sentinel surveillance system to predict and detect epidemics in limited-resource environments.
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