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RACOON: An LLM-based Framework for Retrieval-Augmented Column Type Annotation with a Knowledge Graph

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arxiv 2409.14556 v2 pith:HEH3OCEN submitted 2024-09-22 cs.DB cs.AI

classification cs.DBcs.AI
keywords knowledgellmsracoonannotationcolumngraphimprovellm-based
verification ladder T0 review T1 audit T2 compute T3 formal

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As an important component of data exploration and integration, Column Type Annotation (CTA) aims to label columns of a table with one or more semantic types. With the recent development of Large Language Models (LLMs), researchers have started to explore the possibility of using LLMs for CTA, leveraging their strong zero-shot capabilities. In this paper, we build on this promising work and improve on LLM-based methods for CTA by showing how to use a Knowledge Graph (KG) to augment the context information provided to the LLM. Our approach, called RACOON, combines both pre-trained parametric and non-parametric knowledge during generation to improve LLMs' performance on CTA. Our experiments show that RACOON achieves up to a 0.21 micro F-1 improvement compared against vanilla LLM inference.

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  1. Knowledge Graph-based Retrieval-Augmented Generation for Schema Matching

    cs.DB 2025-01 reject novelty 5.0 of 10

    KG-RAG4SM retrieves relevant Wikidata subgraphs and feeds them to an LLM to decide whether two schema attributes match.

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