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Development of Automatic-Extraction Model of Poisonous Clauses in International Construction Contracts Using Rule-Based NLP

机译:基于规则的NLP在国际施工合同中有毒条款自动提取模型的开发

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As construction projects have significantly increased in size and become more complicated, the number of claims and dispute cases between participating parties during the construction work have been continuously increasing. To prevent such claims and disputes, the participants need to be assured of their contractual positions and rights based on contract facts. For this reason, the process of writing and reviewing the contracts for construction work is crucial. Most international construction projects require contract management teams to review all the possible risks in the contracts during the bidding periods. However, it is very difficult to review a vast number of contracts in a short period of time. Therefore, in this study, we proposed an automatic model of contract-risk extraction based on natural language processing (NLP) that can automatically detect the poisonous clauses of the contract in order to support contract management for construction companies (contractors). In validating the performance of the automatic model developed in this study, we found that the precision and recall were both 81.8% compared with manual review. This study is meaningful since a model has been developed that can carry out a preemptive contract-risk review. (c) 2019 American Society of Civil Engineers.
机译:由于建筑项目的规模显着增加并变得更加复杂,在建设工作期间参与当事人之间的索赔和争议案件的次数一直不断增加。为防止此类索赔和争议,请参与者确保其基于合同事实的合同职位和权利。出于这个原因,写作和审查建筑工作合同的过程至关重要。大多数国际建筑项目都需要合同管理团队在招标期间审查合同中的所有可能风险。但是,很难在短时间内审查大量合同。因此,在本研究中,我们提出了一种基于自然语言处理(NLP)的合同风险提取的自动模型,可以自动检测合同的有毒条款,以支持建筑公司(承包商)的合同管理。在验证本研究中开发的自动模型的性能方面,我们发现,与手动审查相比,精确和召回均为81.8%。本研究有意义,因为已经开发了一个可以进行先发制人的合同风险审查。 (c)2019年美国土木工程学会。

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