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An LLM-Based Approach for Insight Generation in Data Analysis (2503.11664v1)

Published 20 Feb 2025 in cs.AI, cs.CL, and cs.DB

Abstract: Generating insightful and actionable information from databases is critical in data analysis. This paper introduces a novel approach using LLMs to automatically generate textual insights. Given a multi-table database as input, our method leverages LLMs to produce concise, text-based insights that reflect interesting patterns in the tables. Our framework includes a Hypothesis Generator to formulate domain-relevant questions, a Query Agent to answer such questions by generating SQL queries against a database, and a Summarization module to verbalize the insights. The insights are evaluated for both correctness and subjective insightfulness using a hybrid model of human judgment and automated metrics. Experimental results on public and enterprise databases demonstrate that our approach generates more insightful insights than other approaches while maintaining correctness.

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