A comparative analysis with machine learning of public data governance and AI policies in the European Union, United States, and China

Bisson Christophe, Adele Giron, Gauthier Verin
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Abstract

This paper explores the public data governance and AI policies in the world’s three main technological regions which are the United States, China, and European Union based on scientific literature analysis with machine learning. We used the RapidMiner text mining algorithm to classify texts and define the recuring themes in each region through Terms Frequency-Inverse Document Frequency, supervised machine learning techniques with KNN, and Naïve Bayes. Therein, our results reveal the most influential items for each region that emphasize three different approaches in China, the United States and the EU.
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欧盟、美国和中国公共数据治理和人工智能政策的机器学习比较分析
本文基于机器学习的科学文献分析,探讨了世界三大技术区域(美国、中国和欧盟)的公共数据治理和人工智能政策。我们使用RapidMiner文本挖掘算法对文本进行分类,并通过术语频率-逆文档频率、KNN监督机器学习技术和Naïve贝叶斯来定义每个区域中重复出现的主题。其中,我们的结果揭示了每个地区最具影响力的项目,强调中国、美国和欧盟的三种不同方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.00
自引率
11.10%
发文量
0
审稿时长
8 weeks
期刊介绍: The Journal of Intelligence Studies in Business (JISIB) is a double blinded peer reviewed open access journal published by Halmstad University, Sweden. Its mission is to help facilitate and publish original research, conference proceedings and book reviews. The journal includes articles within areas such as Competitive Intelligence, Business Intelligence, Market Intelligence, Scientific and Technical Intelligence, Collective Intelligence and Geo-economics. This means that the journal has a managerial as well as an applied technical side (Information Systems), as these are now well integrated in real life Business Intelligence solutions. By focusing on business applications the journal do not compete directly with journals of Library Sciences or State or Military Intelligence Studies. Topics within the selected study areas should show clear practical implications.
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