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SigmaLaw-ABSA: Dataset for Aspect-Based Sentiment Analysis in Legal Opinion Texts

机译:sigmalaw-absa:法律意见文本中基于方面情绪分析的数据集

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Aspect-Based Sentiment Analysis (ABSA) has been prominent and ongoing research over many different domains, but it is not widely discussed in the legal domain. A number of publicly available datasets for a wide range of domains usually fulfill the needs of researchers to perform their studies in the field of ABSA. To the best of our knowledge, there is no publicly available dataset for the Aspect (Party) Based Sentiment Analysis for legal opinion texts. Therefore, creating a publicly available dataset for the research of ABSA for the legal domain can be considered as a task with significant importance. In this study, we introduce a manually annotated legal opinion text dataset (SigmaLaw-ABSA) intended towards facilitating researchers for ABSA tasks in the legal domain. SigmaLaw-ABSA consists of legal opinion texts in the English language which have been annotated by human judges. This study discusses the sub-tasks of ABSA relevant to the legal domain and how to use the dataset to perform them. This paper also describes the statistics of the dataset and as a baseline, we present some results on the performance of some existing deep learning based systems on the SigmaLaw-ABSA dataset.
机译:基于宽度的情绪分析(ABSA)在许多不同的域名的突出和持续的研究中,但在法律领域不广泛讨论。各种域名的许多公开数据集通常符合研究人员的需求,以便在ABSA领域进行学习。据我们所知,基于法律意见文本的基于方面(党)的情感分析没有公开的数据集。因此,为法律领域的ABSA研究创建一个公开的数据集可以被视为具有重要意义的任务。在这项研究中,我们介绍了一个手动注释的法律意见文本数据集(SIGMALAW-ABSA),用于促进法律领域的ABSA任务的研究人员。 SIGMALAW-ABSA由人类法官注释的英语中的法律意见文本组成。本研究讨论了与法律域相关的ABS的子任务以及如何使用DataSet执行它们。本文还介绍了数据集和作为基准的统计信息,我们展示了一些结果对Sigmalaw-Abs数据集的一些现有深度基于深度学习系统的性能。

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