An experimentally validated approach to automated biological evidence generation in drug discovery using knowledge graphs
Saatviga Sudhahar,
Bugra Ozer,
Jiakang Chang
et al.
Abstract:Explaining predictions for drug repositioning with biological knowledge graphs is a challenging problem. Graph completion methods using symbolic reasoning predict drug treatments and associated rules to generate evidence representing the therapeutic basis of the drug. Yet the vast amounts of generated paths that are biologically irrelevant or not mechanistically meaningful within the context of disease biology can limit utility. We use a reinforcement learning based knowledge graph completion model combined wi… Show more
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