Mia Ellis, Cynthia Kinnan, Margaret McMillan, Sarah Shaukat
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引用次数: 0
Abstract
Abstract Not all firms have equal capacity to absorb productive credit. Identifying those with higher potential may have large consequences for productivity. We collect detailed survey data on small- and medium-sized Tanzanian firms who borrow from a large commercial bank, which in turn raises funds via international capital markets. Using machine learning methods to identify predictors of loan growth, we document, first, that we achieve high rates of predictive power. Second, “soft” information (entrepreneurs’ motivations for entrepreneurship and constraints faced) has predictive power over and above administrative data (sector, age, etc.). Third, there is a different and larger set of predictors for women than men, consistent with greater barriers to efficient capital allocation among female entrepreneurs.
期刊介绍:
The Journal of Globalization and Development (JGD) publishes academic research and policy analysis on globalization, development, and in particular the complex interactions between them. The journal is dedicated to stimulating a creative dialogue between theoretical advances and rigorous empirical studies to push forward the frontiers of development analysis. It also seeks to combine innovative academic insights with the in-depth knowledge of practitioners to address important policy issues. JGD encourages diverse perspectives on all aspects of development and globalization, and attempts to integrate the best development research from across different fields with contributions from scholars in developing and developed countries. Topics: -Economic development- Financial investments- Development Aid- Development policies- Growth models- Sovereign debt