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AIR is a Deep Neural Network (DNN) model used for predicting the excess mortality due to antimicrobial resistance. Additionally, it incorporates patient’s contextual epidemiological and infectious information.

Antimicrobial Resistance Model is a predictive model that once developed will predict the excess mortality rate of one of the five pathogens (ESBL E.coli) examined within the STAMINA project. AIR model relies on Multi-Task Learning (MTL) implemented with Deep Neural Networks with shared hidden layers and is applied to predict excess mortality due to antimicrobial resistance. Among the model’s goals, reducing the medical treatment’s economic burden, as well as improving the patient’s overall quality of life, are included.

Supported Use Cases

Predict E.coli excess mortality

Predict the excess mortality rate of ESBL E.coli due to antimicrobial resistance. 

Related CM functions

Illustrations

 

 

eu De Portfolio of Solutions website  is oorspronkelijk in het kader van het DRIVER+-project ontwikkeld worden. Vandaag wordt de dienst door AIT Austrian Institute of Technology GmbH, ten behoeve van de Europese crisisbeheersing beheerd . PoS is door het Disaster Competence Network Austria (DCNA) en door de H2020 projecten STAMINA en TeamAware gesteund.