欧洲人权法院案件中条款意识法律结果分类的零枪转移

Santosh T.Y.S.S, O. Ichim, Matthias Grabmair
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引用次数: 3

摘要

在本文中,我们将欧洲人权法院案件的法律判决预测转换为一个条款意识分类任务,其中案件结果从案件事实和惯例条款的组合输入中分类。这种配置有助于模型在将文章文本映射到具体案例事实文本时学习一些法律推理能力。当被要求对训练期间未见的文章的案例结果进行分类时,它还提供了一个评估模型泛化到零射击设置的能力的机会。我们设计了零射击实验,并应用了基于域判别和Wasserstein距离的域自适应方法。我们的结果表明,文章感知架构优于直接的事实分类。我们还发现,领域自适应方法提高了零镜头传输性能,文章相关性和编码器预训练影响了效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Zero-shot Transfer of Article-aware Legal Outcome Classification for European Court of Human Rights Cases
In this paper, we cast Legal Judgment Prediction on European Court of Human Rights cases into an article-aware classification task, where the case outcome is classified from a combined input of case facts and convention articles. This configuration facilitates the model learning some legal reasoning ability in mapping article text to specific case fact text. It also provides an opportunity to evaluate the model’s ability to generalize to zero-shot settings when asked to classify the case outcome with respect to articles not seen during training. We devise zero-shot experiments and apply domain adaptation methods based on domain discrimination and Wasserstein distance. Our results demonstrate that the article-aware architecture outperforms straightforward fact classification. We also find that domain adaptation methods improve zero-shot transfer performance, with article relatedness and encoder pre-training influencing the effect.
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