Employing RAG to Create a Conference Knowledge Graph from Text
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Abstract
In this paper, we present Semantic Observer, a platform that 1) defines a FAIR Conference Ontology for describing academic conferences, 2) presents an RAG architecture that constructs a Conference Knowledge Graph based on this ontology, 3) evaluates the architecture on a corpus of latest available CORE conference websites. The Conference Ontology models key entities such as conferences, workshops and challenges, organizer and programme committees, calls for papers and proposals as well as major deadlines and relevant topics. In the evaluation, we compare the performance of three leading Large Language Models: GPT-4 Turbo and Claude 3 Opus - in supporting the Knowledge Graph construction from text. The best-performing RAG architecture is then implemented in Semantic Observer and available in a SPARQL endpoint to make up-to-date conference information FAIR: findable, accessible, interoperable and reusable.
Publication details
- OpenAlex
- W7132574772
- Document type
- conference-paper
- Language
- EN
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- WU Research
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