cs.AI updates on arXiv.org 09月03日
OpinioRAG:基于RAG与LLM的个性化意见摘要生成
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本文提出OpinioRAG,一个可扩展的训练免费框架,结合RAG和LLM高效生成定制化摘要。同时,提出针对情感丰富领域的参考无关验证指标,并提供大规模用户评论数据集,用于生成准确、相关和结构化的总结。

arXiv:2509.00285v1 Announce Type: cross Abstract: We study the problem of opinion highlights generation from large volumes of user reviews, often exceeding thousands per entity, where existing methods either fail to scale or produce generic, one-size-fits-all summaries that overlook personalized needs. To tackle this, we introduce OpinioRAG, a scalable, training-free framework that combines RAG-based evidence retrieval with LLMs to efficiently produce tailored summaries. Additionally, we propose novel reference-free verification metrics designed for sentiment-rich domains, where accurately capturing opinions and sentiment alignment is essential. These metrics offer a fine-grained, context-sensitive assessment of factual consistency. To facilitate evaluation, we contribute the first large-scale dataset of long-form user reviews, comprising entities with over a thousand reviews each, paired with unbiased expert summaries and manually annotated queries. Through extensive experiments, we identify key challenges, provide actionable insights into improving systems, pave the way for future research, and position OpinioRAG as a robust framework for generating accurate, relevant, and structured summaries at scale.

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OpinioRAG RAG LLM 个性化摘要 情感分析
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