cs.AI updates on arXiv.org 10月23日 12:18
LLM助力合同审查:自动提取关键条款
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本文介绍了利用大型语言模型(LLM)自动提取合同关键条款的技术,通过优化文本转换、片段选择和LLM特定技术,显著提升了条款识别的准确性和效率,有望提高合同审查的效率和质量。

arXiv:2510.19334v1 Announce Type: cross Abstract: The advent of Large Language Models has revolutionized tasks across domains, including the automation of legal document analysis, a critical component of modern contract management systems. This paper presents a comprehensive implementation of LLM-enhanced metadata extraction for contract review, focusing on the automatic detection and annotation of salient legal clauses. Leveraging both the publicly available Contract Understanding Atticus Dataset (CUAD) and proprietary contract datasets, our work demonstrates the integration of advanced LLM methodologies with practical applications. We identify three pivotal elements for optimizing metadata extraction: robust text conversion, strategic chunk selection, and advanced LLM-specific techniques, including Chain of Thought (CoT) prompting and structured tool calling. The results from our experiments highlight the substantial improvements in clause identification accuracy and efficiency. Our approach shows promise in reducing the time and cost associated with contract review while maintaining high accuracy in legal clause identification. The results suggest that carefully optimized LLM systems could serve as valuable tools for legal professionals, potentially increasing access to efficient contract review services for organizations of all sizes.

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大型语言模型 合同审查 条款提取 LLM应用 合同管理
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