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Natural Language Processing in Policy Evaluation: Extracting Policy Conditions from IMF Loan Agreements

机译:政策评估中的自然语言处理:从IMF贷款协议中提取政策条件

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Social science researchers often use text as the raw data in investigations: for instance, when investigating the effects of IMF policies on the development of countries under IMF programs, researchers typically encode structured descriptions of the programs using a time-consuming manual effort. Making this process automatic may open up new opportunities in scaling up such investigations. As a first step towards automatizing this coding process, we describe an experiment where we apply a sentence classifier that automatically detects mentions of policy conditions in IMF loan agreements written in English and divides them into different types. The results show that the classifier is generally able to detect the policy conditions, although some types are hard to distinguish.
机译:社会科学研究者经常在调查中使用文本作为原始数据:例如,在调查IMF政策对IMF政策对国家发展的影响时,研究人员通常使用费时的人工对程序的结构化描述进行编码。使该过程自动进行可能为扩大此类调查提供新的机会。作为实现此编码过程自动化的第一步,我们描述了一个实验,在该实验中,我们使用句子分类器来自动检测以英语编写的IMF贷款协议中对政策条件的提及,并将其分为不同类型。结果表明,分类器通常能够检测策略条件,尽管某些类型很难区分。

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  • 会议地点 Turku(FI)
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    Department of Computer Science and Engineering University of Gothenburg Sweden;

    Centre for Business Research Cambridge Judge Business School University of Cambridge UK Harvard Center for Population and Development Studies Harvard University USA The Alan Turing Institute London UK;

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  • 入库时间 2022-08-26 14:42:15

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