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Integrating Medical Scientific Knowledge with the Semantically Quantified Self

dc.contributor.authorThird, Allan
dc.contributor.authorGkotsis, George
dc.contributor.authorKaldoudi, Eleni
dc.contributor.authorDrosatos, George
dc.contributor.authorPortokallidis, Nick
dc.contributor.authorRoumeliotis, Stefanos
dc.contributor.authorDomingue, John
dc.date.accessioned2021-03-22T13:00:32Z
dc.date.available2021-03-22T13:00:32Z
dc.date.issued2016-09-23
dc.identifier.urihttp://hdl.handle.net/11728/11777
dc.description.abstractThe assessment of risk in medicine is a crucial task, and depends on scientific knowledge derived by systematic clinical studies on factors affecting health, as well as on particular knowledge about the current status of a particular patient. Existing non-semantic risk prediction tools are typically based on hardcoded scientific knowledge, and only cover a very limited range of patient states. This makes them rapidly out of date, and limited in application, particularly for patients with multiple co-occurring conditions. In this work we propose an integration of Semantic Web and Quantified Self technologies to create a framework for calculating clinical risk predictions for patients based on self-gathered biometric data. This framework relies on generic, reusable ontologies for representing clinical risk, and sensor readings, and reasoning to support the integration of data represented according to these ontologies. The implemented framework shows a wide range of advantages over existing risk calculation.en_UK
dc.language.isoenen_UK
dc.publisherInternational Semantic Web Conferenceen_UK
dc.relation.ispartofseriesThe Semantic Web – ISWC;
dc.rights© Springer International Publishing AG 2016en_UK
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/en_UK
dc.subjectHealthen_UK
dc.subjectComorbiditiesen_UK
dc.subjectRisk factoren_UK
dc.subjectScientific modellingen_UK
dc.subjectKnowledge captureen_UK
dc.subjectSemanticsen_UK
dc.subjectOntologyen_UK
dc.subjectLinked dataen_UK
dc.titleIntegrating Medical Scientific Knowledge with the Semantically Quantified Selfen_UK
dc.typeArticleen_UK
dc.doiDOI: 10.1007/978-3-319-46523-4_34en_UK


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© Springer International Publishing AG 2016
Except where otherwise noted, this item's license is described as © Springer International Publishing AG 2016