Machine learning with biomedical ontologies
Kulmanov, M.; Smaili, F. Z.; Gao, X.; Hoehndorf, R.
Show abstract
Ontologies have long been employed in the life sciences to formally represent and reason over domain knowledge, and they are employed in almost every major biological database. Recently, ontologies are increasingly being used to provide background knowledge in similarity-based analysis and machine learning models. The methods employed to combine ontologies and machine learning are still novel and actively being developed. We provide an overview over the methods that use ontologies to compute similarity and incorporate them in machine learning methods; in particular, we outline how semantic similarity measures and ontology embeddings can exploit the background knowledge in biomedical ontologies, and how ontologies can provide constraints that improve machine learning models. The methods and experiments we describe are available as a set of executable notebooks, and we also provide a set of slides and additional resources at https://github.com/bio-ontology-research-group/machine-learning-with-ontologies. Key pointsO_LIOntologies provide background knowledge that can be exploited in machine learning models. C_LIO_LIOntology embeddings are structure-preserving maps from ontologies into vector spaces and provide an important method for utilizing ontologies in machine learning. Embeddings can preserve different structures in ontologies, including their graph structures, syntactic regularities, or their model-theoretic semantics. C_LIO_LIAxioms in ontologies, in particular those involving negation, can be used as constraints in optimization and machine learning to reduce the search space. C_LI
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