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dc.contributor.authorMukanova, Assel
dc.contributor.authorMilosz, Marek
dc.contributor.authorDauletkaliyeva, Assem
dc.contributor.authorNazyrova, Aizhan
dc.contributor.authorYelibayeva, Gaziza
dc.contributor.authorKuzin, Dmitrii
dc.contributor.authorKussepova, Lazzat
dc.date.accessioned2024-12-27T09:39:51Z
dc.date.available2024-12-27T09:39:51Z
dc.date.issued2024
dc.identifier.citationMukanova, A.; Milosz, M.; Dauletkaliyeva, A.; Nazyrova, A.; Yelibayeva, G.; Kuzin, D.; Kussepova, L. LLM-Powered Natural Language Text Processing for Ontology Enrichment. Appl. Sci. 2024, 14, 5860. https://doi.org/10.3390/app14135860ru
dc.identifier.issn2162-5689
dc.identifier.otherdoi.org/10.3390/app14135860
dc.identifier.urihttp://rep.enu.kz/handle/enu/20546
dc.description.abstractThis paper describes a method and technology for processing natural language texts and extracting data from the text that correspond to the semantics of an ontological model. The proposed method is distinguished by the use of a Large Language Model algorithm for text analysis. The extracted data are stored in an intermediate format, after which individuals and properties that reflect the specified semantics are programmatically created in the ontology. The proposed technology is implemented using the example of an ontological model that describes the geographical configuration and administrative–territorial division of Kazakhstan. The proposed method and technology can be applied in any subject areas for which ontological models have been developed. The results of the study can significantly improve the efficiency of using knowledge bases based on semantic networks by converting texts in natural languages into semantically linked data.ru
dc.language.isoenru
dc.publisherApplied Sciencesru
dc.relation.ispartofseries14, 5860;
dc.subjectontologyru
dc.subjectSemantic Webru
dc.subjectnatural language processingru
dc.subjectChatGPTru
dc.subjectLarge Languageru
dc.titleLLM-Powered Natural Language Text Processing for Ontology Enrichmentru
dc.typeArticleru


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