Measuring regulatory barriers using annual reports of firms

Haosen Ge
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Abstract

Existing studies show that regulation is a major barrier to global economic integration. Nonetheless, identifying and measuring regulatory barriers remains a challenging task for scholars. I propose a novel approach to quantify regulatory barriers at the country-year level. Utilizing information from annual reports of publicly listed companies in the U.S., I identify regulatory barriers business practitioners encounter. The barrier information is first extracted from the text documents by a cutting-edge neural language model trained on a hand-coded training set. Then, I feed the extracted barrier information into a dynamic item response theory model to estimate the numerical barrier level of 40 countries between 2006 and 2015 while controlling for various channels of confounding. I argue that the results returned by this approach should be less likely to be contaminated by major confounders such as international politics. Thus, they are well-suited for future political science research.

利用企业年度报告衡量监管障碍
现有研究表明,监管是全球经济一体化的主要障碍。然而,对于学者来说,识别和衡量监管壁垒仍然是一项具有挑战性的任务。我提出了一种在国家年度层面量化监管壁垒的新方法。利用美国上市公司年度报告中的信息,我识别了商业从业者遇到的监管障碍。首先,通过手工编码训练集训练出的尖端神经语言模型从文本文档中提取障碍信息。然后,我将提取的障碍信息输入动态项目反应理论模型,以估计 40 个国家在 2006 年至 2015 年间的数字障碍水平,同时控制各种混杂渠道。我认为,这种方法得出的结果不太可能受到国际政治等主要混杂因素的影响。因此,它们非常适合未来的政治科学研究。
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