Towards Interactivity and Interpretability: A Rationale-based Legal Judgment Prediction Framework
Yiquan Wu, Yifei Liu, Weiming Lu, Yating Zhang, Jun Feng, Changlong Sun, Fei Wu, Kun Kuang
摘要
Legal judgment prediction (LJP) is a fundamental task in legal AI, which aims to assist the judge to hear the case and determine the judgment. The legal judgment usually consists of the law article, charge, and term of penalty. In the real trial scenario, the judge usually makes the decision step-by-step: first concludes the rationale according to the case's facts and then determines the judgment. Recently, many models have been proposed and made tremendous progress in LJP, but most of them adopt an end-to-end manner that cannot be manually intervened by the judge for practical use. Moreover, existing models lack interpretability due to the neglect of rationale in the prediction process. Following the judge's real trial logic, in this paper, we propose a novel Rationale-based Legal Judgment Prediction (RLJP) framework. In the RLJP framework, the LJP process is split into two steps. In the first phase, the model generates the rationales according to the fact description. Then it predicts the judgment based on the fact and the generated rationales. Extensive experiments on a real-world dataset show RLJP achieves the best results compared to the state-of-the-art models. Meanwhile, the proposed framework provides good interactivity and interpretability which enables practical use.
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引用它的顶会 Paper13
- ML-LJP: Multi-Law Aware Legal Judgment PredictionYifei Liu, Yiquan Wu, Yating Zhang, Changlong Sun 等SIGIR 2023 · 被引用 31 次
- Syllogistic Reasoning for Legal Judgment AnalysisWentao Deng, Jiahuan Pei, Keyi Kong, Zhe Chen 等EMNLP 2023 · 被引用 17 次
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它引用的顶会 Paper12
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- NeurJudge: A Circumstance-aware Neural Framework for Legal Judgment PredictionLinan Yue, Qi Liu, Binbin Jin, Han Wu 等SIGIR 2021 · 被引用 83 次
- De-Biased Court's View Generation with CausalityYiquan Wu, Kun Kuang, Yating Zhang, Xiaozhong Liu 等EMNLP 2020 · 被引用 71 次
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