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Litigation Analytics: Case outcomes extracted from US federal court dockets

机译:诉讼分析:从美国联邦法院诉讼中摘录的案件结果

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Dockets contain a wealth of information for planning a litigation strategy, but the information is locked up in semi-structured text. Manually deriving the outcomes for each party (e.g., settlement, verdict) would be very labor intensive. Having such information available for every past court case, however, would be very useful for developing a strategy because it potentially reveals tendencies and trends of judges and courts and the opposing counsel. We used Natural Language Processing (NLP) techniques and deep learning methods allowing us to scale the automatic analysis of millions of US federal court dockets. The automatically extracted information is fed into a Litigation Analytics tool that is used by lawyers to plan how they approach concrete litigations.
机译:案卷包含大量用于计划诉讼策略的信息,但该信息被锁定在半结构化文本中。手动得出每个当事方的结果(例如,和解,判决)会非常耗费人力。但是,为过去的每个案件提供此类信息对于制定策略非常有用,因为它有可能揭示法官和法院以及反对律师的趋势和趋势。我们使用自然语言处理(NLP)技术和深度学习方法,使我们能够扩展对数百万美国联邦法院被告人的自动分析范围。自动提取的信息将输入到诉讼分析工具中,律师可使用该工具来计划他们如何处理具体诉讼。

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