Neurosymbolic AI and the Logic-Knowledge Graph Spectrum
KGC 2025
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1h 23m
Kaushik Roy, University of South Carolina, Student
Neurosymbolic AI is a rapidly evolving and emerging field. In recent works, researchers have proposed several conceptualizations of neurosymbolic AI, yet the field still lacks a unified perspective on how different symbolic formalisms, ranging from traditional predicate logic to description logics and knowledge graph–based models, can effectively integrate with neural networks. This tutorial aims to clarify these options by comparing their relative merits in terms of interpretability, computational feasibility, and real-world scalability. We will show how purely logical systems (e.g., Prolog, Markov Logic), description logics (e.g., OWL-based reasoning), and knowledge graphs (e.g., RDF, property graphs) each contribute distinct advantages in neurosymbolic pipelines, especially in conjunction with large language models (LLMs). By systematically analyzing these approaches through case studies and code demonstrations, attendees will gain a deeper understanding of when, why, and how to integrate logic or KG-based techniques within modern AI applications.
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