2023
DOI: 10.1038/s41598-023-32950-5
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Neural network based integration of assays to assess pathogenic potential

Abstract: Limited data significantly hinders our capability of biothreat assessment of novel bacterial strains. Integration of data from additional sources that can provide context about the strain can address this challenge. Datasets from different sources, however, are generated with a specific objective and which makes integration challenging. Here, we developed a deep learning-based approach called the neural network embedding model (NNEM) that integrates data from conventional assays designed to classify species wi… Show more

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