cs.AI updates on arXiv.org 07月29日 12:22
VLQA: The First Comprehensive, Large, and High-Quality Vietnamese Dataset for Legal Question Answering
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本文探讨了大型语言模型在法律文本处理领域的应用及其挑战,强调在低资源语言如越南语中构建法律文本处理应用的重要性,并介绍了VLQA数据集及其在法律信息检索和问答任务中的有效性。

arXiv:2507.19995v1 Announce Type: cross Abstract: The advent of large language models (LLMs) has led to significant achievements in various domains, including legal text processing. Leveraging LLMs for legal tasks is a natural evolution and an increasingly compelling choice. However, their capabilities are often portrayed as greater than they truly are. Despite the progress, we are still far from the ultimate goal of fully automating legal tasks using artificial intelligence (AI) and natural language processing (NLP). Moreover, legal systems are deeply domain-specific and exhibit substantial variation across different countries and languages. The need for building legal text processing applications for different natural languages is, therefore, large and urgent. However, there is a big challenge for legal NLP in low-resource languages such as Vietnamese due to the scarcity of resources and annotated data. The need for labeled legal corpora for supervised training, validation, and supervised fine-tuning is critical. In this paper, we introduce the VLQA dataset, a comprehensive and high-quality resource tailored for the Vietnamese legal domain. We also conduct a comprehensive statistical analysis of the dataset and evaluate its effectiveness through experiments with state-of-the-art models on legal information retrieval and question-answering tasks.

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大型语言模型 法律文本处理 越南语 数据集 法律NLP
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