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Updated: Nov 4, 2025

A Knowledge Graph Approach to Elucidate the Role of Organellar Pathways in Disease via Biomedical Reports
Published on: October 13, 2023
Patient and Graph Embeddings for Predictive Diagnosis of Drug Iatrogenesis
Lina F Soualmia1,2, Vincent Lafon3, Stéfan J Darmoni2,4
1Normandie Univ, UNIROUEN, LITIS EA 4108, F-76000 Rouen, France.
Abstract:
In the context of the IA.TROMED project we intend to develop and evaluate original algorithmic methods that will rely on semantic enrichment of embeddings by combining new deep learning algorithms, such as models founded on transformers, and symbolic artificial intelligence. The documents' embeddings, the graphs' embeddings of biomedical concepts, and patients' embeddings, all of them semantically enriched with aligned formal ontologies and semantic networks, will constitute a layer that will play the role of a queryable and searchable knowledge base that will supply the IA.TROMED's clinical, predictive, and iatrogenic diagnosis support module.
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