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Agentic GraphRAG: AI’s Logical Edge

Session Track: AI Engineering

Session Time:

Session description

AI models are getting tasked to do increasingly complex and industry-specific tasks where different retrieval approaches provide distinct advantages in accuracy, explainability, and cost to execute. GraphRAG retrieval models have become a powerful tool to solve domain specific problems where answers require logical reasoning and correlation that can be aided by graph relationships and proximity algorithms. We will demonstrate how an agent architecture combining RAG and GraphRAG retrieval patterns can bridge the gap in data analysis, strategic planning, and retrieval to solve complex domain-specific problems.

Speaker

photo of Stephen Chin

Stephen Chin

Vice President of Developer Relations, Neo4j

Stephen Chin is vice president of developer relations at Neo4j, conference chair of the LF AI & Data Foundation, and author of numerous titles including the upcoming "GraphRAG: The Definitive Guide" for O'Reilly. He has given keynotes and main stage talks at numerous conferences around the world, including AI Engineer Summit, AI DevSummit, Devoxx, DevNexus, JNation, JavaOne, Shift, Joker, swampUP, and GIDS. Stephen is an avid motorcyclist who has done evangelism tours in Europe, Japan, and Brazil, interviewing developers in their natural habitat. When he is not traveling, Stephen enjoys teaching kids how to do AI, embedded, and robot programming together with his daughters.