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NyayaRAG: Realistic Legal Judgment Prediction with RAG under the Indian Common Law System
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本文提出NyayaRAG,一种基于检索增强生成(RAG)的框架,用于模拟法庭场景,并通过结合案件描述、法律条文和先例,提高印度法律判决预测的准确性和解释质量。

arXiv:2508.00709v1 Announce Type: cross Abstract: Legal Judgment Prediction (LJP) has emerged as a key area in AI for law, aiming to automate judicial outcome forecasting and enhance interpretability in legal reasoning. While previous approaches in the Indian context have relied on internal case content such as facts, issues, and reasoning, they often overlook a core element of common law systems, which is reliance on statutory provisions and judicial precedents. In this work, we propose NyayaRAG, a Retrieval-Augmented Generation (RAG) framework that simulates realistic courtroom scenarios by providing models with factual case descriptions, relevant legal statutes, and semantically retrieved prior cases. NyayaRAG evaluates the effectiveness of these combined inputs in predicting court decisions and generating legal explanations using a domain-specific pipeline tailored to the Indian legal system. We assess performance across various input configurations using both standard lexical and semantic metrics as well as LLM-based evaluators such as G-Eval. Our results show that augmenting factual inputs with structured legal knowledge significantly improves both predictive accuracy and explanation quality.

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法律判决预测 NyayaRAG RAG框架 印度法律 判决预测框架
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