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Active DIGITAL TECHNOLOGY DEV. AWARD IN CLIMATE SENSITIVE INFECTIOUS DISEASE MODELLING Europe PMC

An Open Source Framework for Rift Valley Fever Forecasting

£55.63M GBP

Funder Wellcome Trust
Recipient Organization Ecohealth Alliance
Country United Kingdom
Start Date Oct 01, 2022
End Date Sep 30, 2027
Duration 1,825 days
Number of Grantees 1
Roles Award Holder
Data Source Europe PMC
Grant ID 226061
Grant Description

Rift Valley Fever (RVF) is a complex disease with devastating public health and economic costs.

It is transmitted directly from livestock to people and is maintained via mosquito transmission in livestock populations.

As a zoonotic disease with a vector component, outbreaks of RVF are tightly linked to climatic and environmental conditions.

Statistical modeling approaches have been developed to forecast RVF in Africa, but performance has been inconsistent across regions, with higher predictive accuracy in East Africa than in Southern Africa.

Current continent-wide models, which use the Normalized Difference Vegetation Index (NDVI) to predict RVF activity, do not capture local attributes, such as livestock density and land cover, which may explain differing performance.

We have assembled a team that includes local South Africa (RSA) government stakeholders, and co-created a tool for RSA that builds on previous work to create an RVF Early Warning System for RSA.

Our goal is to package this new, open, locally customizable tool developed for RSA for deployment to other impacted regions.

The intent is that end-users (farmers, farmer associations, others) would be forewarned when to vaccinate their livestock against RVF, a month to three months in advance of potential RVF activity.

All Grantees

Ecohealth Alliance

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