计算机科学
人工智能
机器学习
政治学
公共经济学
经济
作者
Elliott Ash,Sergio Galletta,Tommaso Giommoni
摘要
Can machine learning support better governance? This study uses a tree-based, gradient-boosted classifier to predict corruption in Brazilian municipalities using budget data as predictors. The trained model offers a predictive measure of corruption, which we validate through replication and extension of previous corruption studies. Our policy simulations show that machine learning can significantly enhance corruption detection: Compared to random audits, a machine-guided targeted policy could detect almost twice as many corrupt municipalities for the same audit rate. (JEL C45, D73, H70, H83, K42, O17)
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